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Videa Health, Inc. is seeking a Senior Machine Learning Engineer to design and deploy machine learning systems that enhance clinical decision-making. This role involves working closely with teams to integrate ML systems into healthcare workflows, ensuring the models are robust and interpretable.
The ideal candidate has over 4 years of experience with a strong background in Python and machine learning. Videa offers a competitive salary and a fast-paced, collaborative work culture with opportunities for professional growth.
Videa is a cutting-edge AI-powered solution for dentistry, developed by a team of seasoned leaders, engineers, AI scientists, and clinicians spun out of MIT. Our vision is to be the first company to diagnose a billion people globally. Our product is already used by thousands of dental clinicians to enhance the quality of care through faster diagnoses, to increase operating efficiencies, and to improve patient understanding.
We're looking for a Senior Machine Learning Engineer with deep expertise in some area of ML engineering to join our growing ML team and work closely with our software and computer vision teams. This is an opportunity to design, build, and scale machine learning systems that combine structured clinical data with outputs from our core computer vision models to improve patient care and operational performance.
You'll own end-to-end development of production ML systems, integrate them safely into healthcare workflows, and deploy reliable, interpretable, and monitored models that meet medical‑grade standards. Depending on your background, that might mean predictive and tabular modeling, multimodal systems, large‑scale training and inference infrastructure, model evaluation and reliability, or another specialty where you bring real depth. You'll work alongside ML scientists, clinical experts, and product engineers to translate real clinical questions into systems that ship and hold up over time.
We're looking for a hands‑on builder who's excited to work with real‑world clinical data, get models into production, and own them across their full lifecycle. If you care about impact and want to help define the future of applied AI in healthcare, we'd love to meet you.