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Machine Learning Intermediate

Machine Learning Algorithms Data Preprocessing Neural Networks

This course provides a comprehensive guide to fundamental and advanced topics in Machine Learning (ML). It is tailored for learners who wish to grasp the essentials of machine learning concepts, data preprocessing techniques, model training, neural networks, and practical applications, thus enabling them to apply ML techniques effectively in real-world scenarios. By the end of this course, learners should be able to understand key ML algorithms, handle data using preprocessing techniques, build predictive models, and undertake projects demonstrating learned skills.

Working with Git for ML Projects

Using version control systems like Git is imperative for managing changes and collaborating effectively on ML projects, a crucial skill in professional software and ML development.

Version control using Git on your local machine

Git for Data Scientists: Learn Git through Examples

Git and GitHub for Data Scientists in under 15 minutes