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guidesMay 8, 2026· 5 min read

Give LiteLLM agents long-term memory with Crowkis

Durable, per-user memory for LiteLLM agents that survives restarts and consolidates contradictions, self-hosted, zero egress.

LiteLLM agents forget the moment a run ends, so every session relearns the user and re-pays for context. Crowkis gives them memory that lasts.

Recall known facts before the model call, store what you learned after. Memory is scoped to (agent, user), ranked by relevance blended with recency, and consolidating, a new fact that contradicts an old one retires it.

LiteLLM memory node
mem.remember("prefers email over phone")
mem.recall("how should I contact them?")   # semantic recall
In plain words: Storage isn't memory. Memory is knowing which of the things you stored is still true.

It runs on bundled local models, so you can give LiteLLM agents memory without shipping conversations to anyone. Community edition ships at full power, free to run.