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Coursera

Apply Machine Learning Foundations with Python

EDUCBA via Coursera

Overview

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By the end of this course, learners will be able to explain fundamental machine learning concepts, identify practical applications, configure Python development environments, and perform numerical operations with NumPy. Learners will understand how machine learning differs from traditional programming and how data-driven systems are applied across industries. The course begins with the foundations of machine learning, including how machines learn, common use cases, and introductory TensorFlow examples. Learners then establish a practical workstation using Anaconda and Jupyter Notebook on Windows or Linux. They also explore third-party Python libraries and develop essential numerical computing skills using NumPy arrays, indexing, and universal functions. Completing this course gives learners the technical foundation needed to progress into data analysis, model preparation, and machine learning development. What makes the course unique is its structured beginner-friendly progression from conceptual understanding to hands-on environment setup and numerical programming, enabling learners to begin experimenting with machine learning tools confidently.

Syllabus

  • Getting Started with Machine Learning
    • This module introduces learners to the foundations of machine learning, its real-world applications, and the tools needed to begin hands-on practice. Students explore what machine learning is, how machines learn, and where ML is applied across industries, setting the stage for practical TensorFlow projects.
  • Tools of the Trade – Jupyter, Anaconda & Libraries
    • This module equips learners with essential ML tools such as Anaconda, Jupyter Notebook, and Python libraries. Students learn to manage environments, leverage third-party packages, and perform numerical computations with NumPy for efficient machine learning pipelines.

Taught by

EDUCBA

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