This course introduces the foundational concepts of learning, focusing on supervised, unsupervised, and reinforcement learning. Students will learn how machines can learn from data to make predictions, find patterns, and make decisions over time. Topics include key algorithms such as decision trees, linear classifiers, clustering, and Q-learning. Students will develop a practical understanding of how learning systems work and how to apply them to real-world problems.

Introduction to Learning
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Gain insight into a topic and learn the fundamentals.
Beginner level
Recommended experience
6 hours to complete
Flexible schedule
Learn at your own pace
What you'll learn
Explain the fundamental principles of supervised, unsupervised, and reinforcement learning, including their goals, differences, and applications.
Explain and apply foundational concepts in machine learning theory.
Implement core machine learning algorithms such as decision trees, linear classifiers, k-means clustering, and Q-learning.
Analyze the behavior and performance of different learning algorithms across various problem domains and data types.
Skills you'll gain
- Applied Machine Learning
- Machine Learning Algorithms
- Machine Learning
- Model Training
- Model Optimization
- Artificial Intelligence
- Predictive Modeling
- Artificial Neural Networks
- Model Evaluation
- Machine Learning Methods
- Artificial Intelligence and Machine Learning (AI/ML)
- Unsupervised Learning
- Supervised Learning
- Reinforcement Learning
- Algorithms
Tools you'll learn
Details to know

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Recently updated!
June 2026
Assessments
4 assignments
Taught in English
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There are 4 modules in this course
Instructor

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