Graph-native context infrastructure
HydraDB is built around a graph database core for AI context, with orchestration around the graph for routing, entity extraction, query rewriting, and safety flags.
HydraDB is a graph-native context and memory layer for AI systems that need persistent, structured retrieval across sessions. It helps developers build agents for support, research, coding, sales, and operations workflows.
HydraDB is a graph-native context infrastructure product for AI systems that need persistent memory across sessions. The site positions it as the “brain” behind company AI, with support for agent memory, ontologies, company knowledge layers, agentic actions, and context graphs.
The product is aimed at developers building support agents, research tools, coding assistants, sales copilots, and other applications that need to retrieve exact context from business data, chat logs, documents, and workplace apps. HydraDB emphasizes structured retrieval, temporal versioning, entity resolution, and multi-tenant storage built on object storage.
HydraDB is built around a graph database core for AI context, with orchestration around the graph for routing, entity extraction, query rewriting, and safety flags.
The site says HydraDB can combine connectors, vector retrieval, database filters, and graph queries so agents can retrieve structured context instead of isolated chunks.
HydraDB stores context across a hot in-memory cache, warm NVMe SSD, and cold object storage, which is intended to support high-throughput workloads as data grows.
The product emphasizes temporal versioning and entity resolution so systems can track what was true at a point in time and link related records across sessions.
HydraDB presents benchmark and evaluation claims on its site, including LongMemEval-S, BEAM, and FinanceBench references, plus a reported 90.79% overall score in the rendered benchmark table.
The homepage says connectors are live for Slack, Notion, GitHub, Gmail, and more, and the architecture page mentions 100+ sources across workspace, email, and CRM systems.
Use HydraDB to give support copilots access to customer history, previous resolutions, and ambiguous transcript references so they can answer without asking users to repeat themselves.
Use HydraDB to track evolving competitors, resolve entities across large document sets, and reason over changes over time for analysts or market-intelligence agents.
Use HydraDB to store file histories, architectural decisions, and debugging context for AI coding assistants that need stable project memory.
Use HydraDB for sales agents that need a persistent view of transcripts, emails, CRM records, stakeholder relationships, and commitments across long sales cycles.
Use HydraDB for SRE or DevOps copilots that need incident history, logs, metrics, and deployment context to support root-cause analysis across sessions.
HydraDB is a graph-native context and memory layer for AI systems. It is designed to help agents remember user preferences, past interactions, entity relationships, and other context across sessions.
The source pages describe HydraDB as suitable for customer support AI, research intelligence, AI coding assistants, sales copilots, IT operations AI, and other agent workflows that need persistent memory.
HydraDB is positioned around structured memory, context graphs, and retrieval from connected data sources. The site also says data connectors are live for Slack, Notion, GitHub, Gmail, and more.
The pricing page text indicates storage-based pricing with a minimum commitment. It also says there are no per-seat, feature, API, or infra caps.
The source describes HydraDB as open source and points users to GitHub, but the collected pages do not provide full setup steps or deployment requirements.
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