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Cartha — Agent Operations Platform

Ops layer for AI agent fleets: traces, memory, hard budgets

Most teams get AI agent traces. Almost nobody gets governance. Cartha is the ops layer for agent fleets: full run timelines, scoped memory enforced on the server (user/agent/team/org), hard spend budgets that fail closed, attenuated multi-agent delegation, policies, and human-in-the-loop. Instrument in a few lines (Python SDK): @trace, @tool, wrap_openai, then see agents, costs, and memory in one dashboard. Not another chatbot builder. You bring the agents; we keep them accountable.

Top comment

Hey Product Hunt 👋 We’re the team behind Cartha. What inspired us We were debugging an AI agent in production and couldn’t answer the only question that mattered: what did it know when it made that call—and was it even allowed to know that? Traces told us the path. They didn’t tell us memory scope, spend limits, or who could share what across agents. What we built Cartha is an ops / governance layer for AI agent fleets: • Full run timelines (tools + LLM steps) • Scoped memory enforced on the server (user / agent / team / org)—not “trust the prompt” • Hard budgets that stop work when spend hits the ceiling (not soft alerts) • Multi-agent nest + attenuated delegation (parent can only hand down weaker authority) • Policies + human-in-the-loop escalations • Dashboard for fleets, costs, and memory How you use it pip install cartha-sdk → set CARTHA_API_KEY → cartha.init() → @cartha.trace / @cartha.tool / wrap_openai(). You keep your agents. We make them operable in production. What’s different vs “LLM observability” Observability is necessary. We care about the next layer: enforcement and accountability when agents share memory, call tools, and burn budget. We’re live at https://cartha.in, How to Use: https://cartha.in/how-to-use We’re early and shipping with design partners. Brutal feedback welcome: 1) What would make you install this this week? 2) What do you already use for agent traces/memory/cost? 3) What’s a hard no for putting agent memory in a SaaS? Happy launch day, ask us anything 🚀

About Cartha — Agent Operations Platform on Product Hunt

Ops layer for AI agent fleets: traces, memory, hard budgets

Cartha — Agent Operations Platform was submitted on Product Hunt and earned 6 upvotes and 3 comments, placing #147 on the daily leaderboard. Most teams get AI agent traces. Almost nobody gets governance. Cartha is the ops layer for agent fleets: full run timelines, scoped memory enforced on the server (user/agent/team/org), hard spend budgets that fail closed, attenuated multi-agent delegation, policies, and human-in-the-loop. Instrument in a few lines (Python SDK): @trace, @tool, wrap_openai, then see agents, costs, and memory in one dashboard. Not another chatbot builder. You bring the agents; we keep them accountable.

On the analytics side, Cartha — Agent Operations Platform competes within Developer Tools, Artificial Intelligence and Tech — topics that collectively have 1.6M followers on Product Hunt. The dashboard above tracks how Cartha — Agent Operations Platform performed against the three products that launched closest to it on the same day.

Who hunted Cartha — Agent Operations Platform?

Cartha — Agent Operations Platform was hunted by Pranav Dhaygude. A “hunter” on Product Hunt is the community member who submits a product to the platform — uploading the images, the link, and tagging the makers behind it. Hunters typically write the first comment explaining why a product is worth attention, and their followers are notified the moment they post. Around 79% of featured launches on Product Hunt are self-hunted by their makers, but a well-known hunter still acts as a signal of quality to the rest of the community. See the full all-time top hunters leaderboard to discover who is shaping the Product Hunt ecosystem.

For a complete overview of Cartha — Agent Operations Platform including community comment highlights and product details, visit the product overview.