Make your large language models faster, cheaper, and ready for production.
Training a model happens once. Serving it happens every time someone uses your product, and that is where most AI budgets go. This book explains, step by step, what really happens when an LLM generates text and how engineers make it fast and affordable at scale.
Starting from a single question, "what happens when a model produces one token?", you will build a complete mental model of modern inference, from first principles to production deployment.
Software and ML engineers, platform and MLOps engineers, solution architects, technical product managers, and anyone preparing for AI infrastructure interviews. You need basic Python and a rough idea of what a neural network is. No CUDA or GPU required.
Written by an AI architect and former Amazon Web Services engineer who has built LLM applications serving millions of customers.
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