Why enroll for Data Science with Python Certification Course in Australia?
According to the U.S. Bureau of Labor Statistics, there will be around 11.5 million new jobs for Data Science professionals by 2026
The median salary for an experienced Data Scientist is $1628,00 - Zip Recruiter
According to the TIOBE index, Python is one of the most popular programming languages in the world.
Data Science with Python Course in Australia Benefits
Data Science with Python training covers industry-relevant skills for the fast-growing worldwide job market. The worldwide datasphere is expected to reach 181 zettabytes by 2025, driving the need for Python experts. Data science jobs are predicted to grow by 35–36%, creating 21,000 new positions annually, making this training a gateway to high-value, future-proof careers.
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Why Data Science with Python Certification Course from edureka in Australia
Live Interactive Learning
World-Class Instructors
Expert-Led Mentoring Sessions
Instant doubt clearing
Lifetime Access
Course Access Never Expires
Free Access to Future Updates
Unlimited Access to Course Content
24x7 Support
One-On-One Learning Assistance
Help Desk Support
Resolve Doubts in Real-time
Hands-On Project Based Learning
Industry-Relevant Projects
Course Demo Dataset & Files
Quizzes & Assignments
Industry Recognised Certification
Edureka Training Certificate
Graded Performance Certificate
Certificate of Completion
About your Data Science with Python Certification Course
Data Science with Python Skills
Python Programming
Statistical Analysis
Data Analysis and Visualization
Machine Learning
No Code Data Science
Machine Learning on Cloud
Data Science with Python Tools
Data Science with Python Course Syllabus in Australia
Curriculum Designed by Experts
DOWNLOAD CURRICULUM
Edureka's Data Science with Python Training in Australia will provide hands-on training in Python. We provide live instructor-led training sessions that can help you master the fundamentals of Python. In this Edureka's Data Science Python training in Australia, You will be taught the most fundamental principles of Python programming like Data Structure, data types, Strings, tuples lists, fundamental operations and functions, GUIs multi-threading, data Manipulation and Expressions, Networking Lambda expressions and more. Additionally, during the Data Science Python course, you will acquire a comprehensive understanding of Python concepts of OOPS and modules, Django framework, Database programming, and connectivity to many data sources.
Introduction to Python for Data Science
10 Topics
Topics
Python scripting
Variables & types
Conditions & loops
Function basics
Lambda usage
Lists & tuples
Dictionaries
File reading
Error handling
Jupyter setup
Hands-on
Writing a “Hello World” script
Manipulating lists and dictionaries
Reading a CSV file
Skills
Core Python programming
Data science environment setup
Working with Python Programming
8 Topics
Topics
Set operations
List comprehensions
Generator functions
Using modules
Regex patterns
Special collections
Map & filter
Custom exceptions
Hands-on
Using regex for data cleaning
Creating a generator
Building a custom module
Skills
Intermediate Python techniques
Efficient code structures
Advanced Python Programming for Data Science
10 Topics
Topics
OOP concepts
Class inheritance
Context managers
Unit testing
API requests
Code profiling
Logging basics
JSON handling
Project packaging
Type hints
Hands-on
Building a preprocessing class
Fetching API data
Writing a unit test
Skills
Advanced Python programming
Modular code development
Data Analysis with NumPy and Pandas
10 Topics
Topics
NumPy arrays
Vector operations
Math functions
Series handling
DataFrames
Dataset merging
Missing values
Pivot tables
Data summaries
Memory tuning
Hands-on
NumPy array calculations
Cleaning data with Pandas
Creating a pivot table
Skills
Data manipulation
Basic statistical analysis
Data Visualization and Preprocessing Techniques
9 Topics
Topics
Matplotlib Plotting
Seaborn Visualization Styles
Line and Bar Charts
Histogram Analysis
Web Scraping Basics
Missing Data Treatment
Feature Scaling Techniques
Encoding Categorical Data
Data Storytelling Approaches
Hands-on
Creating Seaborn plots
Scraping website data
Normalizing a dataset
Skills
Data visualization
Data preprocessing
Statistical Methods for Data Science
10 Topics
Topics
Descriptive stats
Variance, standard deviation
Probability
Normal distribution
Hypothesis testing: t-tests
Correlation: Pearson coefficient
Outlier detection: z-score
Sampling: random sampling
Statistical visualization
P-values: significance
Hands-on
Conducting a t-test
Visualizing correlations
Detecting outliers
Skills
Statistical analysis
Result interpretation
Fundamentals of Machine Learning
9 Topics
Topics
CRISP-DM process
ML categories
Python for ML
ML tools
Data lifecycle
Evaluation
Feature basics
AI ethics
Industry insights
Hands-on
Setting up an ML project
Exploring a dataset
Skills
ML workflows
Industry trends
Supervised Learning – Regression Analysis
10 Topics
Topics
Linear regression
Gradient descent
Polynomial regression
Ridge regression
Error metrics
R-squared
Cross-validation
Residual analysis
Feature selection
Overfitting mitigation
Hands-on
Building a linear regression model
Evaluating with RMSE
Skills
Regression modeling
Model evaluation
Supervised Learning – Classification Fundamentals
10 Topics
Topics
Logistic regression
Binary labels
Decision trees
Confusion matrix
Precision & recall
ROC curve
Overfitting
Feature ranking
Model validation
Class imbalance
Hands-on
Logistic regression model
Decision tree visualization
Skills
Binary classification
Evaluation metrics
Supervised Learning – Advanced Classification
11 Topics
Topics
Random forests
SVM
XGBoost
Grid search
Random search
SHAP values
SMOTE
Model stacking
Association rules
Recommendation engines
Model evaluation
Hands-on
Random Forest model
Using SHAP for insights
Building Apriori rules
Skills
Advanced classification
Interpretability, recommendations
Unsupervised Learning and Clustering Techniques
9 Topics
Topics
K-Means clusters
Elbow method
Hierarchical clustering
DBSCAN logic
PCA reduction
Anomaly detection
Silhouette score
Segmentation use
Cluster visuals
Hands-on
K-Means clustering
Applying PCA
Detecting anomalies
Skills
Unsupervised learning
Dimensionality reduction
AutoML and No-Code Data Science Solutions
7 Topics
Topics
AutoML tools
DataRobot
KNIME workflows
H2O.ai models
Synthetic data
Rapid prototyping
AI fairness
Hands-on
DataRobot model building
KNIME workflow creation
Generating synthetic data
Skills
AutoML prototyping
No Code workflows
Reinforcement Learning Essentials (Self-paced)
10 Topics
Topics
Agent-Environment Interaction
OpenAI Gym Setup
Markov Decision Process
Q-Learning Fundamentals
Exploration-Exploitation Tradeoff
Epsilon-Greedy Strategy
Reward Shaping Concepts
Reinforcement Learning Applications
Q-Table Implementation
Reinforcement Learning Limitations
Hands-on
Q-Learning in a game
OpenAI Gym experiment
Skills
RL algorithms
Practical applications
Time Series Analysis and Forecasting Methods (Self-paced)
10 Topics
Topics
Time Series Components
Stationarity Testing (ADF)
ARIMA Model Parameters
Forecasting with Prophet
Forecast Error Metrics
Backtesting Techniques
Trend Visualization Methods
Confidence Interval Analysis
External Variable Integration
Model Selection Strategies
Hands-on
ARIMA model
Prophet forecasting
Visualizing trends
Skills
Time series analysis
Forecasting
Machine Learning on Cloud Platforms (Self-paced)
8 Topics
Topics
Cloud ML Introduction
AWS SageMaker
Google Cloud AI
Azure ML
Cloud storage
Serverless ML
Model deployment
Scalability
Hands-on
Training a model in SageMaker
Deploying with Google Cloud AI
Using S3 for data storage
Skills
Cloud-based ML
Scalable model deployment
MLOps Fundamentals (Self-paced)
7 Topics
Topics
MLOps Introduction
CI/CD for ML
Flask API Deployment
MLflow Model Tracking
Docker Containerization
Model Drift Monitoring
Model Lifecycle Management
Hands-on
Deploying with Flask
MLflow pipeline setup
Skills
MLOps practices
Data Science Python Training in Australia Course Description
In this Data Science with Python Certification Course in Australia, you will be taught Reinforcement Learning which in turn is an important aspect of Artificial Intelligence. You will be able to train your machine based on real-life scenarios using Machine Learning Algorithms. Edureka’s course in Python for Data Science in Australia will also cover both basic and advanced concepts like writing Python scripts, sequence, and file operations. You will use libraries like pandas, numpy, matplotlib, scikit, and master the concepts like machine learning, scripts, and sequence
Why Learn Data Science with Python in Australia?
Python has been one of the premier, flexible, and powerful open-source languages that is easy to learn, easy to use, and has powerful libraries for data manipulation and analysis. For over a decade, It has been used in scientific computing and highly quantitative domains such as finance, oil and gas, physics, and signal processing. It's continued to be a favourite option for data scientists who use it for building and using Machine learning applications and other scientific computations. Python cuts development time in half with its simple to read syntax and easy compilation feature. Debugging programs is a breeze in Python with its built in debugger. It has evolved as the most preferred Language for Data Analytics and the increasing search trends also indicate that it is the Next Big Thing and a must for Professionals in the Data Analytics domain.
About Data Science with Python Certification Course in Australia
Edureka’s Data Science with Python Certification Training is designed to make you grasp the concepts of Data Science and Machine Learning. As a data scientist, you will learn the importance of machine learning and its implementation in the Python programming language. You will be able to automate real-life scenarios using machine learning algorithms, and towards the end of this course, we will be discussing various practical use cases of machine learning with the Python programming language to enhance your learning experience. Edureka offers the best Data Science with Python training online for those who want to be the best in Python. Enroll now in Edureka's online Data Science with Python Certification to get trained by industry experts.
What are the objectives of our Data Science with Python Training Course in Australia?
After completing this Data Science using Python Certification course, you will be able to:
Programmatically download and analyze data
Learn techniques to deal with different types of data – ordinal, categorical, encoding
Learn data visualization
Using I python notebooks, master the art of presenting step by step data analysis
Gain insight into the 'Roles' played by a Machine Learning Engineer
Describe Machine Learning
Work with real-time data
Learn tools and techniques for predictive modeling
Discuss Machine Learning algorithms and their implementation
Validate Machine Learning algorithms
Perform Text Mining and Sentimental analysis
Explain Time Series and its related concepts
Gain expertise to handle business in future, living the present
Edureka offers the best online course for Python Data Science. Enroll now with our data Science with Python training and get a chance to learn from industrial giants.
Why Learn Data Science using Python in Australia?
Python has been one of the premier, flexible, and powerful open-source languages that are easy to learn, easy to use, and powerful libraries for data manipulation and analysis. It has been used for over a decade in scientific computing and highly quantitative domains such as finance, oil and gas, physics, and signal processing. It continues to be a favorite option for data scientists who build and use machine learning applications and other scientific computations. Python cuts development time in half with its simple-to-read syntax and easy compilation feature. Debugging programs is a breeze in Python with its built-in debugger. It has evolved into the most preferred Language for Data Analytics. The increasing search trends also indicate that it is the Next Big Thing and a must for professionals in the data analytics domain.
Who should go for this Data Science with Python course in Australia?
Edureka’s course is a good fit for the below professionals:
Developers aspiring to be a ‘Machine Learning Engineer'
Analytics Managers who are leading a team of analysts
Business Analysts who want to understand Machine
Learning (ML) Techniques
Information Architects who want to gain expertise in
Predictive Analytics
Professionals who want to design automatic predictive models
What are the objectives of our Data Science with Python Course in Australia?
After completing this Data Science with Python Certification course in Australia, you will be able to:
Programmatically download and analyze data
Learn techniques to deal with different types of data – ordinal, categorical, encoding
Learn data visualization
Using python notebooks, master the art of presenting step-by-step data analysis
Gain insight into the 'Roles' played by a Machine Learning Engineer
Describe Machine Learning
Work with real-time data
Learn tools and techniques for predictive modeling
Discuss Machine Learning algorithms and their implementation
Validate Machine Learning algorithms
Explain Time Series and its related concepts
Perform Text Mining and Sentiment analysis
Edureka offers the best online course for Python data science and ML. Enroll now in our Data Science with Python training and get a chance to learn from industry leaders.
What are the prerequisites for this Data Science with Python Course?
The pre-requisites for Edureka's Python Data Science course training includes the fundamental understanding of Computer Programming Languages. Fundamentals of Data Analysis practiced over any of the data analysis tools like SAS/R will be a plus. However, you will be provided with complimentary “Python Statistics for Data Science” as a self-paced course once you enroll for the Data Science with Python certification course.
Who should go for this Python Data Science and ML online course in Australia?
Developers aspiring to be a ‘Machine Learning Engineer'
Analytics Managers who are leading a team of analysts
Business Analysts who want to understand Machine Learning (ML) Techniques
Information Architects who want to gain expertise in Predictive Analytics
Professionals who want to design automatic predictive models
What are the prerequisites for this Data Science with Python Course in Australia?
The prerequisites for Edureka's Python Data Science and ML course training in Australia include a fundamental understanding of Computer Programming Languages.
What is Data Science with Python Course in Australia fee?
The Data Science with Python course in Australia fee is INR 19,795.
How will I execute the practicals in this online Data Science with Python course in Australia?
You will do your assignments and case studies using Jupyter Notebook, which is already installed on your Cloud LAB environment (access it from a browser). The access credentials are available on your LMS. Should you have any queries, the 24*7 Support Team will promptly assist you.
What is syllabus of Data Science with Python Course in Australia?
The Data Science with Python Course syllabus covers:
Introduction to Python
Sequences and File Operations
Deep Dive – Functions, OOPs, Modules, Errors and Exceptions
Introduction to NumPy, Pandas and Matplotlib
Data Manipulation
Introduction to Machine Learning with Python
Supervised Learning - I
Dimensionality Reduction
Supervised Learning - II
Unsupervised Learning
Association Rules Mining and Recommendation Systems
Reinforcement Learning
Time Series Analysis
Model Selection and Boosting
Statistical Foundations (Self-Paced)
Data Connection and Visualization in Tableau (Self-paced)
Advanced Visualizations (Self-paced)
Data Science with Python Course in Australia Projects
Domain: Retail
A big retail chain keeps track of what customers buy, how often they buy it, and their demographics, such as their age and where they live. The marketing team wants to put custom....
Domain: BFSI
A regional bank sees that more and more clients are closing their accounts. The bank aims to guess which customers are most likely to depart based on things like their account ba....
Domain: Real Estate
A real estate agency wishes to give people who are looking to buy a property realistic pricing projections. You need to make a regression model that can estimate house values bas....
Domain: Aviation
An airline has to predict how many passengers it will have each month in order to make the best use of its flight schedules, crew assignments, and fuel planning. You need to use ....
Domain: Finance
A credit card firm loses money because of fake transactions. They want a system that can find strange things in transaction data, including spending patterns that don't make sens....
Domain: Manufacturing
A manufacturing plant uses heavy machinery that sometimes breaks down, which costs a lot of time and money. The plant wants to know when equipment is likely to break down by look....
Domain: Finance
An investment company wants to use machine learning to guess the stock prices of a certain company so they can make better trading choices. You need to use past stock prices and ....
Domain: Supply Chain/Retail
A retail company is having trouble keeping its inventory levels balanced, which means it either runs out of stock (losing revenues) or has too much stock (raising costs). You nee....
Data Science with Python Certification in Australia
To unlock the Edureka’s Data Science with Python Training course completion certificate, you must ensure the following:
Completely participate in this Edureka’s Data Science with Python Training Course.
Evaluation and completion of the quizzes and projects listed.
Yes, Data Scientist is a good career option for those interested in working with data and extracting insights from it. With the explosive growth of data in recent years, the demand for skilled data scientists has increased significantly. As a Data Scientist, one can work in a variety of industries such as healthcare, finance, marketing, and more. The job typically requires a strong foundation in statistics, machine learning, and programming skills, as well as a good understanding of business and domain knowledge. Data Scientist is responsible for collecting, analyzing, and interpreting large and complex data sets to inform business decisions and strategies. Overall, data science is a challenging and rewarding career option with a promising outlook for the future.
Yes, Machine Learning Engineer is a good career option for those interested in working with machine learning algorithms and implementing them in real-world applications. Machine learning is a rapidly growing field with increasing demand for professionals who can build and deploy machine learning models to automate tasks and extract insights from large amounts of data. As a Machine Learning Engineer, one can work in a variety of industries such as healthcare, finance, e-commerce, and more. The job typically requires a strong foundation in machine learning, programming skills, and a good understanding of software engineering principles. Overall, machine learning engineering can be a challenging and rewarding career option with a promising outlook for the future.
To learn data science and machine learning as a beginner, one can start by learning Python programming and then move on to data analysis. After understanding data analysis, one can learn the basics of machine learning, and apply machine learning algorithms to real-world problems. Edureka’s Data Science with Python Certification Training provides a structured learning experience that helps beginners gain practical experience and develop the skills necessary to become proficient in data science and machine learning.
Data Science with Python Certification provides a strong foundation in data science, machine learning, and Python programming. This certification is valuable for several reasons:
Demonstrates Mastery of Key Skills: Certification indicates that an individual has a strong understanding of data science concepts, machine learning techniques, and Python programming skills.
Improves Job Prospects: Data science and machine learning are high-growth industries, and certification can improve job prospects by demonstrating expertise in these areas.
Increases Earning Potential: Certified data scientists and machine learning engineers often earn higher salaries compared to their non-certified peers.
Enhances Credibility: Certification is a recognized indicator of expertise and can enhance an individual's credibility in the field.
Keeps Skills Up-to-Date: Data science and machine learning are constantly evolving fields, and certification requires individuals to stay up-to-date with the latest technologies and techniques.
Enables Career Advancement: Certification can enable individuals to advance their careers by demonstrating mastery of key skills and increasing their value to their organization.
Data Science with Python Certification can open up various job roles in the field of data science and machine learning. Some of the common job roles available after completing this certification include:
Data Analyst: A data analyst collects, analyzes, and interprets large datasets to help businesses make informed decisions.
Machine Learning Engineer: A Machine Learning Engineer is responsible for designing, building, and deploying machine learning models that can automate certain tasks.
Data Scientist: A Data Scientist is responsible for analyzing and interpreting complex data to extract insights and build predictive models.
Business Intelligence Analyst: A Business Intelligence Analyst is responsible for analyzing data to provide insights that can help businesses make informed decisions.
AI Architect: An AI Architect is responsible for designing and implementing AI systems, including machine learning algorithms and neural networks.
Research Scientist: A Research Scientist is responsible for conducting research and experiments to develop new machine learning algorithms and techniques.
You do not need a coding background to enroll in this Data Science with Python course. The course begins with basic modules in which we cover the fundamentals of Python coding. In fact, you do not need prior knowledge in data science or machine learning either. All relevant topics are a part of this course from scratch.
Please visit the following pages, which will guide you through the top interview questions:
Sudhiranjan SarmaAnalytics and Information management, Cognizant
★★★★★
My experience with edureka about Python is much impressed, with such quality of the training. We get access to each day class recorded sessions after the live class. Edureka is very quick reactive towards the queries of each single user, they answer and follow-up to ensure you get the correct response to resolve your query. Online recording of the course is very useful as you can go back and refer at any time. You have access to course and materials for ever, which is really helpful. More over 24/7 quality support, which is very much important to any of us. I must thank to Edureka for giving such support. Thanks guys, cheerââ¬Â¦
December 09, 2017
Pramod KunjuData Warehouse Guru, Greater Los Angeles Area
★★★★★
I found the big data course from Edureka to be comprehensive, and practical. Course instructor was very knowledgeable, and handled the class very well in terms of making it interactive, keeping it interesting, and responding to all questions from students. The support staff was excellent as well, engineers assisted me remotely when I encountered an issue with HDFS even after the course was over. Overall, highly recommend Edureka for big data training and more.
December 09, 2017
Chandra Bhushan KIT Consultant, Architect - Analytics in Karmanya Software Pvt Ltd, Hyderabad Area, India
★★★★★
Edureka has redefined the e-learning service with the help of technology. They have excellent faculty and support team that has given a real class room learning experience. Anybody can upgrade their skills at their convenience! Edureka has expertise in Big Data Analytics and they are providing opportunity to acquire these skills in a short time!
December 09, 2017
Anitha GuruswamiQA Consultant
★★★★★
This company has been heaven sent to anyone interested in learning the newer technologies that are changing by the day. Their instructors are top notch and above all their customer service is unparalleled. The student experience was amazing for me. I took the Selenium course and the content was perfect. My instructor obviously had wealth of experience in the material he was teaching. He had answers of all questions we had asked. I will surely take more courses with them and I have recommended edureka to several of my colleagues. Great Job! edureka.
December 09, 2017
Vijay KalkundriPrincipal Engineer at Reflektion, former Senior Test Engineer at Nokia
★★★★★
I had a great experience in taking the Hadoop course from Edureka. It is the only course in the market which facilitates the people from the Non development background to plug themselves into the Hadoop ecosystem. Edureka has provided a unique opportunity for the students around the world to connect to some of the best tutors. The tutors not only provide a very good theoretical explanation , but also help us to co-relate it with some real time examples. This gives a edge to the students and the working professional who attend the course.The best advantage of the Edureka course is the fact that we can attend the course from the comfort of our home as well as download the courses and listen to it over again and again. I am sure that Edureka will be playing a key role in filling the Gap of the Professionals which the Cloud ecosystem is currently facing. Cheers,Vijay Kalkundri - Good Session and one of the best instructor to have interfaced with at online.
December 09, 2017
T
Tanmoy Kar
★★★★★
The online course delivered by Edureka on big data, Hadoop - developer is really nice. The first thing of Edureka is that, the very first day of your registration, you have access the full tutorial ( record of some previous batch) and which will provide enough knowledge/teaching, so whenever you are attending your actual training session, you are not a fresher of the session, but a kind, expert and you can clear any knowledge gap.More of that, as you are getting 2 lectures for the same session, your knowledge is much more, than you would have expected. As these recording will be available you for ever, you always go again and again and again.The help/administration/support is really really good.For Hadoop big Data developer, I will recommend to join.Thanks
December 09, 2017
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Balasubramaniam MuthuswamyTechnical Program Manager
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Vinayak TalikotSenior Software Engineer
Vinayak shares his Edureka learning experience and how our Big Data training helped him achieve his dream career path.
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Sriram speaks about his learning experience with Edureka and how our Hadoop training helped him execute his Big Data project efficiently.
Data Science with Python Training in Australia FAQs
What is Python for Data Science in Australia?
Data is all around us, and data science will help extract the information. Data science has many applications, and python can be used to implement them. Python is a generic language that can be used to build websites, backend APIs, and scripting. Python's built-in libraries, frameworks, and tools can be used to perform various operations in data science.
Why should I learn Data Science with Python Course in Australia?
Python is definitely one of the most popular languages in Data Science, which can be used for data analysis, manipulation, and visualization. It has access to many Data Science libraries, making it the perfect language for developing applications and implementing algorithms.
Where Can I Learn Python for Data Science in Australia?
Although there are many free learning resources available, finding one that teaches data science very well is recommended. You should choose a platform that will teach you interactively and has a curriculum designed to help you along your data science journey. Edureka is one such platform as we offer the best online Data Science with Python course for data science that will take you from beginner to data analyst in Python or data scientist.
What is the Data Science with Python Course duration?
Data Science with Python Course can take between five and 10 weeks to learn basic Python programming concepts, including object-oriented programming and basic Python syntax. It is important to note that the time it takes for Python programming depends on your experience with web development, data science, and other related fields.
Why is it essential to learn Data Science with Python course Australia?
Python is preferred by data scientists over other languages because it has powerful machine learning libraries that can be used to build any machine learning algorithm. This allows for a better understanding of the current performance without sacrificing existing performance. These powerful frameworks allow data scientists to create the right neural networks. Python is the foundation of Google, YouTube and Instagram. It allows for multiple tasks to be automated and the use of these applications in various languages. The code is simple and well-documented. Many organizations are still not adopting a data-centric approach. The market lacks data literacy. To fill this gap in supply, you will need to study data science and its underlying areas by taking python data science training.
What type of job can I get after completing a Data Science with Python course in Australia?
This is an industry where opportunities are plenty, so once you have the education and qualifications, the jobs are waiting for you. To name a few, some of the most common job titles for data scientists include:
Business Intelligence Analyst
Data Mining Engineer
Data Architect
Data Scientist
Senior Data Scientist
Which companies will hire me once I become a Python for Data Science professional in Autralia?
Data science has grown by a substantial extent today. Companies in almost every industry are trying to have a data science team to help them use their data for the company’s progress.
Here, we have compiled a list of reputed companies that are currently hiring data scientists.
1. Sigmoid
2. Mindtree
3. LinkedIn
4. Paypal
5. Oracle
6. TCS
7. ZIGRAM
What is the Average Salary of Data scientists in Australia?
According to Payscale, the average salary for a Data Scientist with Python skills is $98307.
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