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Machine Learning For Dummies
Machine Learning For Dummies
Coursera
MOOC / Non-credit
USD 49
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About this course
This specialization provides a structured path from foundational concepts to real-world applications in machine learning. The first course introduces core ideas of AI, Python coding essentials, key tools, and the mathematical principles underlying machine learning, giving learners a solid conceptual and technical base. The second course focuses on core machine learning algorithms and model validation, covering simple learners, similarity-based approaches, linear models, support vector machines, neural networks, and ensemble techniques. Learners develop the ability to implement, evaluate, and improve models systematically. The third course applies these skills to practical scenarios, including image classification, sentiment analysis, and recommendation systems. Ethical considerations and best practices for data usage are emphasized, ensuring learners gain both technical competence and responsible data handling skills. This Specialization is based on the book, Machine Learning For Dummies, by John Paul Mueller. From Machine Learning For Dummies Copyright © 2026 by John Wiley & Sons, Inc. All rights reserved, including rights for text and data mining and training of artificial technologies or similar technologies. Used by arrangement with John Wiley & Sons, Inc.
What you'll learn
understand foundational concepts of AI and machine learning
implement core machine learning algorithms
evaluate and improve machine learning models
apply machine learning techniques to practical scenarios such as image classification and sentiment analysis
comprehend ethical considerations in data usage
Course objectives
provide a structured learning path in machine learning
develop technical competence in machine learning practices
ensure responsible handling of data in real-world applications
Skills you'll gain
python
machine learning
algorithms
sentiment analysis
recommendation systems
neural networks
image classification
model validation
ai concepts
support vector machines
ensemble techniques
ethical data usage
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