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Python, Statistics, Data Preparation, Machine Learning, Natural Language Processing, Deep Learning, ChatGPT, Reinforcement Learning, Sequence Learning, Image Processing, Computer Vision, Spark MLlib, Data Visualization and many more skills.
View CurriculumOur Masters Course Alumni work for amazing companies
I gained confidence to make a career leap to Data Science after this course
I had a wonderful learning experience with Edureka. Not only did I get exposed to Data Science, but I was also able to learn related technologies that helped me in my career. The course also gave me an edge over other candidates when I was looking for a job change and helped me ace my interviews. I am now planning to shift my career to Data Science and Edureka's course has given me the knowledge and confidence to make this career leap.
The Python Statistics for Data Science course is designed to provide learners with a comprehensive understanding of how to perform statistical analysis and make data-driven decisions. Through a series of interactive lessons and hands-on exercises, you will learn how to conduct hypothesis testing, perform regression analysis, and many more. This course is ideal for anyone looking to enhance their data science skills and gain a deeper understanding of statistics. This course will provide you with the knowledge you need to succeed in the rapidly growing field of data science.
Edureka’s Data Science with Python Certification Course, accredited by NASSCOM, is designed to help you master essential Python programming concepts for Data Science. You’ll gain expertise in data operations, file handling, object-oriented programming, and key Python libraries like Pandas, NumPy, and Matplotlib. Whether you're a beginner or a professional, this course provides a comprehensive introduction to Machine Learning, Recommendation Systems, and other critical Data Science techniques to jumpstart your career in the field.
Edureka's advanced AI training course is designed by industry experts to help you prepare AI Engineer, Data Scientist, NLP Engineer, etc. The objective of this Artificial Intelligence training course is to help learners improve their Computer Vision, Text Processing skills, etc. AI certification course will help you understand various concepts like OS Module, Setting the NLTK Environment, POS Tagging, etc.
Edureka’s ChatGPT Course will help you effectively interact with the biggest revelation in the ChatGPT. You will be able to upgrade your prompt engineering skills by integrating ChatGPT plugins and ChatGPT APIs to enhance your efficiency. Unlock your potential by crafting your very own chatbot, harnessing the knowledge gained from real-life applications and projects covered in this course, and taking a sneak peek into the future with GPT-4 and ChatGPT Plus.
Edureka's PySpark certificationCourse is curated by top industry experts to help you master the skills required to become a successful PySpark developer. Gain a comprehensive understanding of the Spark stack and learn to effectively use Python in the Spark ecosystem to become a skilled PySpark developer.
Financing Options
Financing options available without any credit/debit card. The interest amount will be discounted from the price of the course and will be borne by Edureka. You will be charged the course price minus the interest.
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12 million Career Opportunities estimated for experienced Machine Learning Engineers in the IT industry across the globe.
Salary Trend The average salary for a Machine Learning Engineer is $136,047 per year.
22.00% Annual Growth in job opportunities for Machine Learning Engineers by 2023, worldwide.
A Machine Learning Engineer is a professional who designs, develops, and maintains machine learning (ML) systems and applications. Machine learning engineers have a strong background in computer science, mathematics, and statistics and possess the technical skills needed to develop and deploy ML models.
Their primary responsibility is to build and deploy machine learning models that can learn from and make predictions on large datasets. They work with data scientists, software engineers, and other professionals to develop end-to-end ML systems that can be integrated into applications and workflows. This may involve selecting the appropriate algorithms, fine-tuning models, and deploying them in a production environment.
Machine Learning Engineers also have to keep up with the latest developments in ML and AI technologies, research and experiment with new algorithms and techniques, and continuously optimize and improve their ML models to achieve better performance.
There are several reasons why someone may choose to become a machine learning engineer:
The roles and responsibilities of machine learning engineers may vary depending on the organization, but some common tasks and responsibilities include:
A certificate of completion for the AI and Machine Learning Course in Melbourne shall be awarded to you once you have completed the following courses:
To aid your learning journey, we have added the following elective courses in the LMS:
Completion of the above elective courses is not associated with Master's Program completion criteria.
The Machine Learning Engineer training course in Melbourne is for those who want to fast-track their AI and Machine Learning career. This AI and Machine Learning Masters Course will benefit the people working in the following roles:
With machine Learning certification training in Melbourne, you can expect to work on various projects that focus on real-world applications of Machine Learning. These projects may include tasks such as:
These are just a few examples, and the projects in applied Machine Learning certification training can vary depending on the program and curriculum. The aim is to provide hands-on experience in solving real-world problems using Machine Learning techniques and methodologies.