LLM Memory with RAG... what's your take?

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Trying to solve a problem: LLMs forget everything between conversations.

I keep re-researching the same API docs, competitor info, and company knowledge.

Tokens add up... Time wasted...

What are people actually using?

I see a few approaches:

  • RAG setups

  • Vector databases

  • Just saving to Notion/Obsidian manually

We built something that lets Claude save research to collections, then query them later.

Made a dedicated page for this:

But genuinely curious... what's working in production?

Are people building custom RAG pipelines? Using existing tools? Just dealing with the amnesia? What's your stack look like?

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