AI recommends. Rules protect. Patients decide.
Ensure Health's decision engine is built in six layers, ordered deliberately: safety and policy first, structured data second, low-cost AI third, the decision engine itself fourth, expensive frontier AI fifth, and the patient-facing action last. This ordering is the single most important architectural decision in the system — it's what allows us to say, credibly, that AI recommends, rules protect, and patients decide.
When a member asks about a drug price, the engine runs a fixed-priority waterfall:
A legible, constraint-ranked engine beats a general-purpose agent at this stage on four counts: explainability (a scored ranking shows its work), cost (selective model calls instead of default over-calling), regulatory posture (maps cleanly to FDA's Non-Device CDS criteria), and debuggability (any wrong recommendation traces to a specific data flag). More agentic techniques remain a future consideration once there's an outcome-labeled track record to evaluate them against.
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