
Latent Health is building the next generation of pharmacy platforms, leveraging clinical AI to streamline medication access and improve patient outcomes. Their AI-native solution addresses…

Latent Health is building the next generation of pharmacy platforms, leveraging clinical AI to streamline medication access and improve patient outcomes. Their AI-native solution addresses…
Core product: AI-driven medication access platform (prior authorizations, 340B compliance, appeals)
Customers: Health systems (works with large systems; cited partners include MetroHealth and Vanderbilt)
Recent funding: Reported $80M Series A; total funding reported >$93M
Employees: Approximately 65 (company snapshot)
Medication access and affordability; reducing administrative burden in health systems (prior authorization, 340B compliance, appeals).
Healthcare software / Clinical AI
$80M
Reported Series A bringing total funding to over $93M.
“Includes investors such as Transformation Capital, Spark Capital, McKesson Ventures, Conviction, General Catalyst, and Y Combinator”
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Latent is building the intelligence infrastructure for American healthcare. Our products are already helping hospitals and clinics dramatically increase workflow output, speed up patient access to medications, and boost provider revenue. Our flagship multi-modal search and question-answering platform analyzes EHR data to surface the most relevant information, reducing operational overhead and improving care delivery.
We’re a small, mission-driven team backed by General Catalyst, Conviction, and YC, tackling some of healthcare’s hardest technical challenges. If you're passionate about applying cutting-edge machine learning in a high-stakes domain, we’d love to meet you.
About The Role As a Machine Learning Engineer at Latent, you’ll design and deploy advanced models at the frontier of medical language understanding. You will develop systems that can interpret long-form clinical text, generate auditable justifications for medical decisions, and reason over structured and unstructured data to automate the prior authorization process end-to-end.
You’ll work on some of the most pressing problems in applied AI—balancing model expressiveness with verifiability, maintaining safety in open-ended generation, and scaling LLMs to production in high-stakes environments. This is a rare opportunity to bring research into production at the edge of what’s possible in medicine and AI.
This is a high-impact, high-ownership role based full-time onsite in our San Francisco office. What You’ll Do
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