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Hands-on, bash-first guide to running private, low-latency AI in a homelab on modest hardware: 3 copy/paste case studies - (1) local LLM chat via Ollama + Open WebUI, (2) offline RAG 'ask my docs' with local embeddings, (3) MLflow experiment tracking - plus apt/dnf/zypper commands, rootless containers, simple on-disk data, CPU-first defaults, and tips on backups, security, scaling, and automation.