Grow Therapy is on a mission to serve as the trusted partner for therapists growing their practice, and patients accessing high-quality care. Powered by technology, we are a three-sided marketplace that empowers providers, augments insurance payors, and serves patients. Following the mass increase in depression and anxiety, the need for accessibility is more important than ever. To make our vision for mental healthcare a reality, we’re building a team of entrepreneurs and mission-driven go-getters. Since launching in February 2021, we’ve empowered more than ten thousand therapists and hundreds of thousands of clients across the country and insurance landscape. We’ve raised more than $328Mm in funding, including our Series D, at a $3B valuation from Sequoia Capital, Transformation Capital, TCV, SignalFire, Menlo Ventures, Goldman Sachs Alternatives, and others. The Opportunity We're hiring a Staff ML Platform Engineer to drive the technical vision and execution of Grow Therapy's Machine Learning Platform. In this role, you'll design, build, and scale the real-time ML systems that power core product experiences, starting with patient-provider matching and define the architecture that will carry the platform through the next several years of growth. You'll operate as a de facto technical decision-maker, partnering closely with Data Science, Product and Engineering to translate business goals into robust platform capabilities and setting the bar for what excellent ML infrastructure looks like at Grow. Why This Role Matters Matching a client to the right therapist is one of the most consequential moments in mental healthcare. It's also a hard technical problem. Grow Therapy's matching system must be fast, accurate, and personalized, operating under strict latency constraints at a scale that only grows. Getting this right means more people get better care, more providers build thriving practices, and Grow's platform delivers on its promise. We're growing fast with nearly 22,000 clinicians, over 1.4 million clients, and on track to surpass 10 million sessions in 2026, and we're still early. The Staff ML Platform Engineer who joins now will build foundational systems that matter at meaningful scale and help define how ML is practiced at Grow for years to come.
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Job Type
Full-time
Career Level
Senior
Education Level
No Education Listed