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Red Teaming : AI for Cybersecurity

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Red Teaming : AI for Cybersecurity

By: Ajit Singh
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"Red Teaming: AI for Cybersecurity" serves as a comprehensive, hands-on guide to the revolutionary intersection of offensive security and artificial intelligence. This textbook is designed to bridge the critical knowledge gap between theoretical AI concepts and their practical application in simulating and executing sophisticated cyber-attacks for defensive purposes. It methodically walks the reader through the entire red teaming lifecycle, demonstrating at each stage how AI and Machine Learning can be leveraged to enhance speed, scale, and stealth.


Key Features of the Book:


1. Progressive Learning Curve: Starts with the basics of Red Teaming and AI before moving to advanced, integrated concepts.
2. Hands-On Practicals: Features practical exercises and Python code snippets in every relevant chapter to reinforce learning.
3. Real-World Case Studies: Analyzes real-life cyber-attacks and demonstrates how AI could have played a role for both attackers and defenders.
4. Comprehensive Capstone Project: A full-fledged DIY project in the final chapter to build an autonomous AI agent for penetration testing.
5. Lucid and Simple Language: Complex technical topics are broken down into easy-to-understand explanations with relatable analogies and examples.
6. Holistic Coverage: Explores the design, architecture, implementation, and deployment of AI models for red teaming tasks.
7. Ethical Focus: A dedicated chapter on the ethics, legalities, and responsible use of AI in offensive security, including governance frameworks like MITRE ATT&CK.
8. Future-Forward: Discusses the future scope and emerging trends, preparing readers for the next wave of cybersecurity challenges.



To Whom This Book Is For:

1. B.Tech and M.Tech Students: Computer Science, IT, and Cybersecurity engineering students will find this an invaluable textbook and reference guide that aligns with their curriculum.
2. Cybersecurity Professionals: Penetration testers, security analysts, and existing red teamers can use this book to upgrade their skillset and incorporate AI into their workflow.
3. AI/ML Practitioners: Data scientists and AI engineers interested in applying their skills to the dynamic field of cybersecurity.
4. Researchers and Academics: A consolidated resource for research in AI-driven security, adversarial ML, and autonomous cyber operations.
5. Cybersecurity Enthusiasts: Anyone with a foundational knowledge of programming and networking who wishes to explore the future of offensive security.

Disclaimer: Earnest request from the Author.

Kindly go through the table of contents and refer kindle edition for a glance on the related contents.

Thank you for your kind consideration!
Computer Science Security & Encryption Cybersecurity Programming Hacking Artificial Intelligence
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