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Paperback Artificial Intelligence and Machine Learning Engineering with Python: Mathematical Foundations, Deep Learning, Neural Networks, Transformers, MLOps, a Book

ISBN: B0H4D25FVY

ISBN13: 9798180398024

Artificial Intelligence and Machine Learning Engineering with Python: Mathematical Foundations, Deep Learning, Neural Networks, Transformers, MLOps, a

Practical Artificial Intelligence and Machine Learning Engineering
Mathematical Foundations, Intelligent Algorithms, Deep Learning Architectures, and Industrial AI Systems using Python

Artificial Intelligence and Machine Learning are transforming every industry-from manufacturing, healthcare, finance, cybersecurity, and telecommunications to autonomous systems, robotics, and intelligent enterprise applications. Yet many resources focus either on theory without implementation or coding without a solid mathematical foundation.

This book bridges that gap.

Practical Artificial Intelligence and Machine Learning Engineering is a comprehensive, industry-focused guide that takes you from core mathematical concepts to the design, development, deployment, and optimization of real-world AI systems using Python. Written for students, software engineers, data scientists, researchers, and technology professionals, this book combines rigorous theory with practical implementation techniques used in modern AI engineering environments.

Inside this book, you will learn:

Mathematical foundations for AI and machine learning, including linear algebra, probability, statistics, optimization, and information theory

Supervised, unsupervised, semi-supervised, and reinforcement learning techniques

Regression, classification, clustering, dimensionality reduction, and ensemble learning algorithms

Deep learning architectures, including CNNs, RNNs, LSTMs, GRUs, Autoencoders, GANs, Transformers, and attention mechanisms

Natural Language Processing (NLP), Large Language Models (LLMs), computer vision, and intelligent perception systems

Feature engineering, model evaluation, hyperparameter tuning, and performance optimization

Scalable AI pipelines, MLOps practices, model deployment, monitoring, and lifecycle management

Industrial AI system design for production-ready environments

Ethical AI, explainable AI, responsible machine learning, and governance frameworks

End-to-end Python implementations using modern AI and machine learning libraries

Unlike introductory AI books that stop at basic algorithms, this text emphasizes engineering principles required to build reliable, scalable, maintainable, and deployable AI solutions. Readers gain both conceptual understanding and practical skills needed for modern industrial applications.

What Makes This Book Different?

Strong mathematical rigor without unnecessary complexity

Practical Python-based implementations and engineering workflows

Coverage from fundamentals to advanced deep learning systems

Real-world AI architecture and deployment considerations

Industry-oriented approach suitable for professional development

Extensive explanations, examples, and implementation strategies

Whether you are preparing for a career in Artificial Intelligence, Machine Learning Engineering, Data Science, Deep Learning, Intelligent Automation, or advanced software development, this book provides the knowledge and practical expertise required to design and build modern AI systems with confidence.

Master the mathematics. Understand the algorithms. Build intelligent systems. Engineer production-ready AI solutions.

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