Mastering AI Observability (Paperback)
Harold Roop
Sold by CitiRetail, Stevenage, United Kingdom
AbeBooks Seller since June 29, 2022
New - Soft cover
Condition: New
Ships from United Kingdom to U.S.A.
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Add to basketSold by CitiRetail, Stevenage, United Kingdom
AbeBooks Seller since June 29, 2022
Condition: New
Quantity: 1 available
Add to basketPaperback. Mastering AI Observability: A Practical Guide to Monitoring, Evaluating, Debugging and Optimizing Production AI SystemsHave you ever deployed an AI application that looked perfect in testing, only to fail, slow down, hallucinate, or become expensive once real users started using it? If you've spent hours digging through logs, searching online for answers, or trying to figure out why your AI system isn't behaving the way it should, you're not alone.Modern AI systems are powerful, but they can also be difficult to understand. A small change in a prompt, model, dataset, or retrieval pipeline can lead to inaccurate answers, higher costs, poor performance, or frustrated users. Most documentation explains how to build AI applications, but very little shows you how to keep them running reliably in production.Mastering AI Observability was written to solve that problem. This practical guide shows you how to monitor, evaluate, debug, and optimize production AI systems with confidence. Whether you're working with Large Language Models (LLMs), Retrieval-Augmented Generation (RAG), AI agents, or modern machine learning applications, you'll learn how to understand what's happening inside your AI systems and fix problems before they affect your users.Inside this book, you'll learn how to: Build observable AI systems from the ground upCollect and analyze logs, metrics, traces, and telemetryMonitor LLMs, AI agents, and RAG applications in productionDetect hallucinations, model drift, latency issues, and performance bottlenecksUse OpenTelemetry, OpenInference, and modern observability toolsDebug AI failures and perform root cause analysisTrack token usage, infrastructure health, and operational costsImprove reliability, scalability, security, and user experienceYou'll also find step-by-step instructions, practical examples, real-world case studies, complete code samples, diagrams, dashboards, checklists, and best practices that make even complex observability concepts easy to understand and apply.Drawing on proven engineering practices and real production scenarios, the author explains each concept in clear, simple language that helps you move from theory to real-world implementation without feeling overwhelmed. Don't wait until hidden AI failures damage your application, increase your costs, or erode user trust. Learn how to monitor your AI systems the right way from the very beginning.Get your copy of Mastering AI Observability today and start building AI applications that are reliable, transparent, efficient and ready for production. This item is printed on demand. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability.
Seller Inventory # 9798188597481
Mastering AI Observability: A Practical Guide to Monitoring, Evaluating, Debugging and Optimizing Production AI Systems
Have you ever deployed an AI application that looked perfect in testing, only to fail, slow down, hallucinate, or become expensive once real users started using it? If you've spent hours digging through logs, searching online for answers, or trying to figure out why your AI system isn't behaving the way it should, you're not alone.
Modern AI systems are powerful, but they can also be difficult to understand. A small change in a prompt, model, dataset, or retrieval pipeline can lead to inaccurate answers, higher costs, poor performance, or frustrated users. Most documentation explains how to build AI applications, but very little shows you how to keep them running reliably in production.
Mastering AI Observability was written to solve that problem. This practical guide shows you how to monitor, evaluate, debug, and optimize production AI systems with confidence. Whether you're working with Large Language Models (LLMs), Retrieval-Augmented Generation (RAG), AI agents, or modern machine learning applications, you'll learn how to understand what's happening inside your AI systems and fix problems before they affect your users.
Inside this book, you'll learn how to:
You'll also find step-by-step instructions, practical examples, real-world case studies, complete code samples, diagrams, dashboards, checklists, and best practices that make even complex observability concepts easy to understand and apply.
Drawing on proven engineering practices and real production scenarios, the author explains each concept in clear, simple language that helps you move from theory to real-world implementation without feeling overwhelmed. Don't wait until hidden AI failures damage your application, increase your costs, or erode user trust. Learn how to monitor your AI systems the right way from the very beginning.
Get your copy of Mastering AI Observability today and start building AI applications that are reliable, transparent, efficient and ready for production.
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