Kaman is an enterprise AI agent platform built on KDL a version-native data lake with sub-second queries, automatic versioning, and SQL time travel. No Spark, no ops overhead. Build agents with unified data, 39+ MCP connectors, intelligent multi-provider LLM routing, and deploy across 16 channels (WhatsApp, Slack, email, Teams & more). No coding required.
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Hey Product Hunt! We're the team behind Kaman, and we'd love to tell you what drove us to build this.
Every AI agent demo looks great — until you ask it about your actual data. That's when the cracks show: stale context, no memory between sessions, siloed databases that agents can't reach, and ballooning LLM costs from routing everything to GPT-4.
We spent months running agents in production and hitting every one of those walls. So we built the infrastructure layer we wished existed — starting with KDL, a version-native data lake designed specifically for AI workloads. Sub-second queries, automatic versioning, time travel, and OpenLineage-compatible lineage tracking — without the Spark/JVM overhead of Delta Lake or Iceberg.
The rest of the platform grew from there: hierarchical agent memory (KMMS), 16-channel deployment, 39+ MCP connectors, and intelligent multi-provider LLM routing that's cut inference costs by 35–55% in production.
We're live and would love your feedback — especially from anyone who's wrestled with data infrastructure for AI agents. Ask us anything! 🚀