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Is the Data Layer for Agent Consumption Just Text-to-SQL?
Is the Data Layer for Agent Consumption Just Text-to-SQL?
Agents don't think in filters - they think in meaning. They combine world knowledge with user context to craft semantic queries based on intent, not keywords.
The problem: The industry is stuck translating natural language into pre-set SQL filters. Rigid schemas. Static filters.
Our agent-native data layer: Vector embeddings + semantic matching for company activities:
- What functions are they building?
- What migrations are happening?
- Who's joining and leaving?
Static filters for deterministic data:
- Headcount, location, funding stage
The bet: Agents are smart enough to query both static and semantic fields. We're building for Agents that reason around meaning.