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llm-inference-performance-interview

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UpdatedMarch 13, 2026 at 01:58

Coach technical interviews for LLM inference, model compression, and HPC-oriented deployment. Use when Codex needs to answer or refine questions about Transformer inference internals, KV cache, attention variants, quantization, pruning, distillation, sparsity, vLLM, TensorRT-LLM, TGI, ONNX Runtime, llama.cpp, CUDA or Triton kernels, FlashAttention, PagedAttention, Roofline reasoning, speculative decoding, continuous batching, or multi-GPU serving. Also use when the user wants mock interview answers, back-of-the-envelope performance calculations, bottleneck analysis, or framework and hardware tradeoff explanations.

Installation

Install with Codex or Claude Copy this prompt, paste it into Codex, Claude, or another assistant, and let it review the skill page and install it for you.

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