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I Built a Memory System for AI Agents That Actually Forgets
Jno · 2026-06-23 · via DEV Community
Cover image for I Built a Memory System for AI Agents That Actually Forgets

Jno

Every AI agent memory system I've used (Mem0, Honcho, Hindsight) has the same problem: they accumulate forever. Old facts pollute retrieval. More tokens → worse results. Your agent gets slower and dumber over time.

So I built recall-sqlite — a memory system that actually forgets.

The core idea: tiered storage. Memories are automatically promoted or demoted based on how often they're accessed.

  • Hot tier (~500): ANN + keywords + FTS5 — fast full retrieval
  • Warm tier (~5K): Keywords + FTS5 only — 66-99% less compute
  • Cold tier (unlimited): Zero compute, auto-promoted when relevant

Key design decisions:

  1. Zero LLM at query time (embedding model only, 150MB local)
  2. No vector database (just SQLite + sqlite-vec)
  3. Graceful degradation (keyword+FTS5 fallback when offline)
  4. Automatic schema migration (no manual steps)
  5. Single pip install, no API keys, no Docker

After 6 months of daily use with 1469 memories, latency stays at ~80ms and memory is fixed at ~1.5MB.

Just got PR'd into the Hermes Agent ecosystem.

pip install recall-sqlite
github.com/Jnocode/recall-memory