Building an LLM prototype is easy. Engineering one that survives production is not.Enterprise Natural Language Processing with LLM is a practical architectural guide for software architects, AI engineers, and developers building production-ready NLP and LLM applications in Python. Move beyond simple prompts and demos to understand the systems, infrastructure, security, and engineering practices required to operate sophisticated generative AI at enterprise scale. Inside, you'll learn how to: Architect LLM-powered applications, including agentic and conversational systemsDesign advanced RAG architectures with hybrid search, re-ranking, query transformation, and graph-based contextManage prompts, context windows, token limits, versioning, and complex workflowsBuild and orchestrate multi-agent systems in Python with routing, human-in-the-loop validation, and execution tracingControl LLM costs through semantic caching, model routing, batching, and API optimizationFine-tune and self-host open-source models using LoRA, QLoRA, vLLM, TGI, and TensorRT-LLMDefend AI applications against prompt injection, jailbreaks, data leakage, and other security risksEstablish LLMOps pipelines for evaluation, A/B testing, model management, and continuous deploymentDesign model-agnostic architectures capable of adapting to evolving AI technologiesWhether you're designing an enterprise chatbot, RAG platform, autonomous AI workflow, or broader generative AI infrastructure, this book focuses on the architectural decisions that matter when prototypes become production systems. Build LLM applications that are scalable, secure, observable, and ready for the demands of real-world enterprise AI.
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