Building Reliable AI Systems (Paperback)

Sprache: Englisch

Verlag: Manning Publications, New York, 2026

163343673X / 9781633436732

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Paperback. This book shows you how to grow a promising prototype into a production product you can deliver, maintain, and scale. In 11 sharply-focused chapters, it walks you through a unique reliability process that author Rush Shahani refined while building an AI-powered sales intelligence platform used by over 15,000 go-to-market teams. Timely and practical, this book provides concrete steps to eliminate costly hallucinations, streamline computational resources, and confidently deploy secure, trustworthy, and compliant AI solutions. Youll immediately appreciate how Building Reliable AI Systems defines AI reliability along six critical dimensionsaccuracy and grounding, safe agency, graceful failure, consistency, fairness, and operational efficiencyand provides a specific three-layer framework to achieve these goals. The first layer, with a focus on outputs, shows you how to get consistent and accurate responses using well-engineered prompts, RAG, and model customization. The second layer, about agents, establishes parameters for memory, tool usage, and orchestration in agentic systems. The book concludes with the third layerReliable Operationscovering deployment, monitoring, and responsible AI. The books reliability framework emphasizes the symbiotic relationship between evaluation and reliability, proving that you cannot improve what you do not measure. Youll learn to measure your applications using fine-grained LLM-native evaluation rubrics like the Grounding Defect Rate, Hallucination Severity Score, and FActScore that audit everything from RAG outputs to the entire step-by-step reasoning trajectory of autonomous agents. Building Reliable AI Systems stays rooted in reality from start to finish. As you go, you will build several projects, including a multi-agent travel planner and a medical assistant, and use industry standard tools and specifications like LangGraph and MCP. In the helpful appendices youll find a handy reference architecture and decision-making checklists. Reviewer Mohamed Zohir Koufi, Lead AI Engineer at Capgemini, praises how the book brings together architecture, tooling, evaluation, and governance in the way real systems are built. By taking this comprehensive approach to LLMOps, the book delivers a reproducible process to ensure your applications stay cost-effective, fast, and compliant with enterprise standards like HIPAA and GDPR. What's inside Ground outputs in real business data Orchestrate safe, consistent multi-step agent workflows Implement robust monitoring, semantic caching, and multi-model fallbacks About the reader For Python-fluent software engineers and data scientists ready to build production-grade, reliable AI applications. About the author Rush Shahani is an AI leader who has spent his career shipping machine learning systems that hold up under real-world conditions. He co-founded Persana AI, a Y Combinator-backed sales intelligence platform that has joined forces with Rox. Before Persana, Rush built AI and search systems at LinkedIn and Element AI (acquired by ServiceNow), and backend and payments infrastructure at Shopify. Practical, comprehensive, and urgently needed. Samer Hamad, Amazon Shipping may be from multiple locations in the US or from the UK, depending on stock availability.

Bestandsnummer des Verkäufers 9781633436732

Titel
Building Reliable AI Systems (Paperback)
Autor
Shahani
Verlag
Manning Publications, New York
Veröffentlichungsjahr
2026
Zustand
new
Einband
Paperback
Sprache
Englisch
ISBN-10
163343673X
ISBN-13
9781633436732

Grand Eagle Retail

Bensenville, IL, USA

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AbeBooks-Verkäufer/-in seit 12. Oktober 2005

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