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Mastering Retrieval-Augmented Generation - Advanced Techniques and Production-Ready Solutions for Enterprise AI
75,60 €
APress
Sivumäärä: 820 sivua
Asu: Pehmeäkantinen kirja
Julkaisuvuosi: 2026, 03.01.2026 (lisätietoa)
Kieli: Englanti
Retrieval-Augmented Generation (RAG) represents the cutting edge of AI innovation, bridging the gap between large language models (LLMs) and real-world knowledge. This book provides the definitive roadmap for building, optimizing, and deploying enterprise-grade RAG systems that deliver measurable business value.


This comprehensive guide takes you beyond basic concepts to advanced implementation strategies, covering everything from architectural patterns to production deployment. You'll explore proven techniques for document processing, vector optimization, retrieval enhancement, and system scaling, supported by real-world case studies from leading organizations.


Key Learning Objectives




Design and implement production-ready RAG architectures for diverse enterprise use cases
Master advanced retrieval strategies including graph-based approaches and agentic systems
Optimize performance through sophisticated chunking, embedding, and vector database techniques
Navigate the integration of RAG with modern LLMs and generative AI frameworks
Implement robust evaluation frameworks and quality assurance processes
Deploy scalable solutions with proper security, privacy, and governance controls


Real-World Applications




Intelligent document analysis and knowledge extraction
Code generation and technical documentation systems
Customer support automation and decision support tools
Regulatory compliance and risk management solutions


Whether you're an AI engineer scaling existing systems or a technical leader planning next-generation capabilities, this book provides the expertise needed to succeed in the rapidly evolving landscape of enterprise AI.


What You Will Learn




Architecture Mastery: Design scalable RAG systems from prototype to enterprise production
Advanced Retrieval: Implement sophisticated strategies, including graph-based and multi-modal approaches
Performance Optimization: Fine-tune embedding models, vector databases, and retrieval algorithms for maximum efficiency
LLM Integration: Seamlessly combine RAG with state-of-the-art language models and generative AI frameworks
Production Excellence: Deploy robust systems with monitoring, evaluation, and continuous improvement processes
Industry Applications: Apply RAG solutions across diverse enterprise sectors and use cases


 


Who This Book Is For


Primary audience: Senior AI/ML engineers, data scientists, and technical architects building production AI systems; secondary audience: Engineering managers, technical leads, and AI researchers working with large-scale language models and information retrieval systems


Prerequisites: Intermediate Python programming, basic understanding of machine learning concepts, and familiarity with natural language processing fundamentals


 


 

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