Off-the-shelf AI assistants answer individual questions well, but they fall short on a different axis: continuity. Ask a stateless assistant about your garden today and it has no idea that you mentioned your fast-draining raised beds three weeks ago, that you only use organic fertilizer, or that your petunias were struggling through a heat wave. Every conversation starts from zero, and the burden of re-explaining context falls on the user.
The problem isn’t the quality of the answers, but that the assistant has no memory of you. This post shows how to build a personal assistant that accumulates context using OpenClaw, an open source agentic system, running on AgentCore runtime, a capability of Amazon Bedrock AgentCore. AgentCore memory, a capability of Amazon Bedrock AgentCore, turns disposable chats into durable knowledge. You will also see how to tag those memories with structured metadata to retrieve records that matter for the question at hand.
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