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Artificial Intelligence and Machine Learning: Comprehensive Masterclass

Master the fundamentals of AI, Machine Learning, Deep Learning, and NLP. Build practical skills with hands-on algorithms, neural networks, and real-world applications.

edureka!
edureka!@edurekain
Published Jun 23, 2026
Updated Jun 23, 2026
Artificial Intelligence and Machine Learning: Comprehensive Masterclass
4h 47m
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Course Overview

Welcome to the ultimate journey into Artificial Intelligence and Machine Learning. This comprehensive course is designed to take you from a complete beginner to a confident practitioner, covering foundational concepts, key algorithms, deep learning architectures, and natural language processing.

What You'll Learn

  • Core AI Concepts: Understand the history, demand, and various applications of Artificial Intelligence.
  • Machine Learning Pipelines: Master supervised, unsupervised, and reinforcement learning paradigms.
  • Supervised Algorithms: Learn Linear Regression, Logistic Regression, Decision Trees, Random Forests, Naive Bayes, KNN, and SVMs.
  • Deep Learning & Neural Networks: Explore Single/Multi-Layer Perceptrons, Backpropagation, CNNs, and RNNs.
  • Natural Language Processing (NLP): Dive into text mining, NLP terminologies, and real-world text processing.

Prerequisites

  • Basic understanding of programming concepts (familiarity with Python is highly recommended).
  • High school-level mathematics (algebra and basic probability).

Tools & Technologies

  • Python: The primary language for AI development.
  • Scikit-Learn: For machine learning algorithms and data preprocessing.
  • TensorFlow & Keras: For building and training deep neural networks.

Course Content

5Chapters16Lessons5Quizzes
1

Introduction to Artificial Intelligence

3 lessons · 27mQuiz
1

Foundations and Historical Evolution of AI

8:46
2

What is AI and Modern Applications

8:03
3

Types of AI and Programming Languages

10:23
2

Machine Learning Foundations & Supervised Algorithms

4 lessons · 2h 15mQuiz
1

Introduction to Machine Learning & Core Workflows

37:37
2

Supervised Learning: Regression Analysis

21:47
3

Supervised Learning: Classification Algorithms

60:04
4

Hands-On Classification Demonstration

15:56
3

Unsupervised and Reinforcement Learning

2 lessons · 49mQuiz
1

Mastering Unsupervised Learning & K-Means Clustering

14:04
2

Introduction to Reinforcement Learning & Q-Learning

35:01
4

Deep Learning & Artificial Neural Networks

4 lessons · 57mQuiz
1

Introduction to Deep Learning and the Single-Layer Perceptron

11:33
2

Multi-Layer Perceptrons and Backpropagation

20:04
3

Advanced Architectures: CNNs and RNNs

5:42
4

Hands-on Deep Learning Demonstration

20:02
5

Natural Language Processing (NLP)

3 lessons · 18mQuiz
1

Introduction to NLP and Text Mining

6:51
2

Core NLP Terminologies and Concepts

5:26
3

Practical NLP Demonstration

6:02

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