Rishit Mavani

Rishit Mavani

ExeclaveExeclave
Creator of Execlave - a runtime AMP.

About

Founder of Execlave — an AI Agent Governance and Enforcement Platform (runtime AMP) that enforces what agents are allowed to do, not just logs what they did. Enterprise AI & AI agent systems, governance, compliance, and runtime policy.

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Maker History

  • Execlave
    ExeclaveThe gate between your AI agents and the real world
    Aug 2026
  • 🎉
    Joined Product HuntJune 26th, 2026

Forums

How are you enforcing runtime policy for AI agents today?

Over the last year, I have been building and integrating AI agents into real systems and keep hitting the same concern: once an agent can call tools and APIs, how do we enforce what it is allowed to do, not just log what it did after the fact?

I am curious how others are handling this. Do you use policy-as-code, allowlists, approvals, or something else to govern agents at runtime? What controls or evidence would make you comfortable letting agents touch production data and systems?

I am working on Execlave, AI Agent Governance & Enforcement Platform (runtime AMP) that sits as a gate in front of agents, but I would really like to hear how you are approaching this problem today and what is missing.

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