Platform Engineering for Artificial Intelligence: Mastering Kubernetes Orchestration for Natural Language Processing with LLM
Language: English
Published by Independently published, 2026
- Softcover
- New

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- Title
- Platform Engineering for Artificial Intelligence: Mastering Kubernetes Orchestration for Natural Language Processing with LLM
- Author
- Stormveld, Erik
- Publisher
- Independently published
- Publication year
- 2026
- Condition
- New
- Binding
- Soft cover
- Language
- English
- ISBN 13
- 9798171899660
What happens when AI experimentation needs to become reliable enterprise infrastructure?
Building an LLM application is one challenge. Building the platform that allows AI teams to deploy, scale, secure, observe, and continuously improve those applications is another.
Platform Engineering for Artificial Intelligence: Mastering Kubernetes Orchestration for Natural Language Processing with LLM explores the architecture behind modern enterprise AI platforms, bringing together Kubernetes, large language models, RAG, vector databases, GPUs, agentic workflows, and LLMOps.
Designed for engineers and architects working at the intersection of cloud infrastructure and AI, this book explores how to create standardized, scalable foundations for production LLM workloads.
Inside, you'll explore:
Build the platform your AI teams can depend on.
Building an LLM application is one challenge. Building the platform that allows AI teams to deploy, scale, secure, observe, and continuously improve those applications is another.
Platform Engineering for Artificial Intelligence: Mastering Kubernetes Orchestration for Natural Language Processing with LLM explores the architecture behind modern enterprise AI platforms, bringing together Kubernetes, large language models, RAG, vector databases, GPUs, agentic workflows, and LLMOps.
Designed for engineers and architects working at the intersection of cloud infrastructure and AI, this book explores how to create standardized, scalable foundations for production LLM workloads.
Inside, you'll explore:
- Designing internal AI platforms and developer-friendly “golden paths”
- Deploying and serving LLMs with vLLM and TGI on Kubernetes
- Scaling vector databases and persistent embedding infrastructure
- Building and operating RAG pipelines with event-driven workloads
- Orchestrating MCP gateways, tools, and multi-agent systems
- Running LoRA, QLoRA, and distributed fine-tuning workflows
- Managing LLM gateways, token budgets, caching, and model routing
- Implementing security, guardrails, RBAC, PII protection, and compliance
- Establishing observability and LLMOps across the model lifecycle
Build the platform your AI teams can depend on.
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California Books
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