The company’s latest evolution aims to solve a persistent limitation in medical automation: point solutions often fail to move the needle on population-level metrics. By deploying a supervising orchestration brain, the platform now decides which specific agent engages a patient, when to intervene, and which clinical narrative is most effective for a given individual. This approach marks a transition from simple information retrieval to managing care journeys across entire hospital populations.
At the core of this system is the Polaris architecture, a 700-billion-parameter model supported by 30 specialized supervising units. According to CEO Munjal Shah, the logic is built on lessons learned from clinical reality, where understanding a cough or recognizing a drug name is as critical as the primary interaction. The system has been validated by over 7,700 U.S.-licensed clinicians, with the company reporting a 99.89% accuracy rate in advice across hundreds of thousands of test calls. These orchestrators are now being deployed across payer, provider, and life science sectors, targeting areas like STAR rating improvement and patient retention without the need for human intervention in routine escalations.




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