Complete pricing guide for Mem0 Platform. Compare all plans, analyze costs, and find the perfect tier for your needs.
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mo
Unlimited end users10,000 add requests/month1,000 retrieval requests/month1 projectCommunity support
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Unlimited end users50,000 add requests/month5,000 retrieval requests/month1 projectCommunity support
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Unlimited end users200,000 add requests/month20,000 retrieval requests/month3 projectsEmail support
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Unlimited end users500,000 add requests/month50,000 retrieval requests/monthUnlimited projectsPrivate Slack support
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Unlimited end usersUnlimited add requestsUnlimited retrieval requestsUnlimited projectsPrivate Slack plus SLA
Pricing sourced from Mem0 Platform · Last verified March 2026
Mem0 Platform provides a memory layer for AI agents and applications. It is intended to help agents remember user preferences, context, and interactions across sessions instead of relying only on the current prompt or a raw conversation transcript. This is especially useful for products where personalization and continuity are central to the user experience. The website positions Mem0 around long-term memory for AI, agent state management, retrieval-augmented generation, and vector database use cases.
The open-source Mem0 library is the developer-controlled implementation, while Mem0 Platform is positioned as the managed service for teams that want production memory infrastructure. The current tool data describes the platform as adding managed scaling, reliability, dashboards, analytics, team management, and enterprise security features. That distinction matters if your team wants to avoid running the memory storage and operational layer yourself. If you mainly need experimentation or local control, the open-source library may be enough.
The provided website schema identifies the company as Mem0, Inc., founded in 2023 in San Francisco, California. It lists the slogan as “The memory layer for AI agents” and notes Y Combinator S24 as an award or affiliation. The schema names two founders: Taranjeet Singh, Co-founder and CEO, and Deshraj Yadav, Co-founder and CTO. It also lists official profiles on GitHub, X, LinkedIn, Y Combinator, and Crunchbase.
The existing tool data says Mem0 integrates at the conversation level through API calls rather than being tied to a single LLM. That means teams can use it as a memory service around their agent or app, while continuing to choose their own model and orchestration stack. The product’s website also lists agent infrastructure, Model Context Protocol, retrieval-augmented generation, and vector databases among areas Mem0 knows about. In implementation, teams should still verify SDK and framework compatibility against their exact stack.
Mem0 Platform can be relevant for privacy-sensitive applications because memory systems need explicit controls for what is stored, retrieved, updated, and deleted. The existing tool data describes APIs for add, search, update, and delete operations, plus dashboard-based memory management and enterprise security controls. Public pricing lists audit logs, SSO, custom integrations, on-prem deployment, and SLA support on the Enterprise plan. Regulated teams should still request security documentation and confirm how user deletion, audit, encryption, retention, data residency, and access controls work before production use.
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