Are you ready to harness the power of Generative AI and Large Language Models (LLMs) in real business applications? This comprehensive guide shows you how to design, build, and deploy production-ready APIs using FastAPI, the high-performance Python framework trusted by professionals worldwide.
Whether you’re a software engineer, data scientist, AI product manager, or entrepreneur, this book walks you step by step through the essential patterns, best practices, and real-world case studies you need to create secure, scalable, and cost-effective AI-powered systems.
Inside you’ll learn how to:
– Frame business problems into workable generative AI solutions
– Master FastAPI fundamentals for high-throughput AI services
– Design reliable API service contracts and streaming endpoints
– Implement Retrieval-Augmented Generation (RAG) pipelines with vector databases
– Manage configuration, secrets, and provider abstractions safely
– Enforce authentication, authorization, and compliance (GDPR, HIPAA, SOC 2)
– Apply safety filters, input scrubbing, and human-in-the-loop approvals
– Monitor production APIs with logging, metrics, and distributed tracing
– Optimize for performance, token cost efficiency, and caching
– Deploy at scale using Docker, Kubernetes, and cloud-native patterns
– Test and evaluate LLM outputs with golden datasets, regression checks, and A/B testing
– Adapt proven product patterns for customer support, sales enablement, and internal automation
With scripts, configs, Kubernetes manifests, CI/CD templates, and prompt versioning strategies, this book doesn’t stop at theory—it gives you everything you need to build, run, and maintain enterprise-grade generative AI APIs.
Case studies include:
– A telecom support assistant scaling to 100,000+ daily inquiries
– A sales copilot integrated with CRM systems to shorten deal cycles
– An internal automation workflow with mandatory human approvals for compliance
If you want to build applications that go beyond demos—systems that real businesses trust and pay for—this is the guide you need.
Perfect for readers searching for:
Generative AI, FastAPI, Large Language Models, Python AI development, business AI applications, AI API design, RAG pipelines, vector databases, AI deployment with Docker and Kubernetes, LLM safety and compliance, production-ready AI systems, AI engineering best practices.
Unlock the playbook for building scalable generative AI APIs—and take your projects from prototype to production with confidence.
Les informations fournies dans la section « Synopsis » peuvent faire référence à une autre édition de ce titre.
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Paperback. Etat : new. Paperback. Are you ready to harness the power of Generative AI and Large Language Models (LLMs) in real business applications? This comprehensive guide shows you how to design, build, and deploy production-ready APIs using FastAPI, the high-performance Python framework trusted by professionals worldwide.Whether you're a software engineer, data scientist, AI product manager, or entrepreneur, this book walks you step by step through the essential patterns, best practices, and real-world case studies you need to create secure, scalable, and cost-effective AI-powered systems.Inside you'll learn how to: - Frame business problems into workable generative AI solutions- Master FastAPI fundamentals for high-throughput AI services- Design reliable API service contracts and streaming endpoints- Implement Retrieval-Augmented Generation (RAG) pipelines with vector databases- Manage configuration, secrets, and provider abstractions safely- Enforce authentication, authorization, and compliance (GDPR, HIPAA, SOC 2)- Apply safety filters, input scrubbing, and human-in-the-loop approvals- Monitor production APIs with logging, metrics, and distributed tracing- Optimize for performance, token cost efficiency, and caching- Deploy at scale using Docker, Kubernetes, and cloud-native patterns- Test and evaluate LLM outputs with golden datasets, regression checks, and A/B testing- Adapt proven product patterns for customer support, sales enablement, and internal automationWith scripts, configs, Kubernetes manifests, CI/CD templates, and prompt versioning strategies, this book doesn't stop at theory-it gives you everything you need to build, run, and maintain enterprise-grade generative AI APIs.Case studies include: - A telecom support assistant scaling to 100,000+ daily inquiries- A sales copilot integrated with CRM systems to shorten deal cycles- An internal automation workflow with mandatory human approvals for complianceIf you want to build applications that go beyond demos-systems that real businesses trust and pay for-this is the guide you need.Perfect for readers searching for: Generative AI, FastAPI, Large Language Models, Python AI development, business AI applications, AI API design, RAG pipelines, vector databases, AI deployment with Docker and Kubernetes, LLM safety and compliance, production-ready AI systems, AI engineering best practices.Unlock the playbook for building scalable generative AI APIs-and take your projects from prototype to production with confidence. This item is printed on demand. Shipping may be from multiple locations in the US or from the UK, depending on stock availability. N° de réf. du vendeur 9798263968977
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Paperback. Etat : new. Paperback. Are you ready to harness the power of Generative AI and Large Language Models (LLMs) in real business applications? This comprehensive guide shows you how to design, build, and deploy production-ready APIs using FastAPI, the high-performance Python framework trusted by professionals worldwide.Whether you're a software engineer, data scientist, AI product manager, or entrepreneur, this book walks you step by step through the essential patterns, best practices, and real-world case studies you need to create secure, scalable, and cost-effective AI-powered systems.Inside you'll learn how to: - Frame business problems into workable generative AI solutions- Master FastAPI fundamentals for high-throughput AI services- Design reliable API service contracts and streaming endpoints- Implement Retrieval-Augmented Generation (RAG) pipelines with vector databases- Manage configuration, secrets, and provider abstractions safely- Enforce authentication, authorization, and compliance (GDPR, HIPAA, SOC 2)- Apply safety filters, input scrubbing, and human-in-the-loop approvals- Monitor production APIs with logging, metrics, and distributed tracing- Optimize for performance, token cost efficiency, and caching- Deploy at scale using Docker, Kubernetes, and cloud-native patterns- Test and evaluate LLM outputs with golden datasets, regression checks, and A/B testing- Adapt proven product patterns for customer support, sales enablement, and internal automationWith scripts, configs, Kubernetes manifests, CI/CD templates, and prompt versioning strategies, this book doesn't stop at theory-it gives you everything you need to build, run, and maintain enterprise-grade generative AI APIs.Case studies include: - A telecom support assistant scaling to 100,000+ daily inquiries- A sales copilot integrated with CRM systems to shorten deal cycles- An internal automation workflow with mandatory human approvals for complianceIf you want to build applications that go beyond demos-systems that real businesses trust and pay for-this is the guide you need.Perfect for readers searching for: Generative AI, FastAPI, Large Language Models, Python AI development, business AI applications, AI API design, RAG pipelines, vector databases, AI deployment with Docker and Kubernetes, LLM safety and compliance, production-ready AI systems, AI engineering best practices.Unlock the playbook for building scalable generative AI APIs-and take your projects from prototype to production with confidence. This item is printed on demand. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability. N° de réf. du vendeur 9798263968977
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