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QuantHealth is an AI startup supporting drug development and clinical trials. Our ground-breaking clinical trial simulator can run thousands of trials in parallel to de-risk and optimize upcoming clinical trials. Our solution, based on a huge dataset of 350M patients and 100K drugs, drastically reduces drug development costs, shortens development timelines. We are venture backed, based in Israel, and have reputable pharma customers in both Europe and the US. This is a fantastic opportunity for an engineer who wants to join a fast-growing startup and tackle complex challenges.
Job Overview:
Our clinical trials simulator combines medical domain expertise, machine learning modeling, and statistical validation to simulate trials and predict their outcomes. We're seeking an experienced ML Ops Engineer to transform this process into a robust, production-grade system. This role requires deep machine learning knowledge to comprehend and enhance our ML lifecycle, combined with strong software engineering skills to design and implement a solution that orchestrates these complex workflows with reliability, reproducibility, and scalability. While this is fundamentally an IC position, it also heavily involves requirements gathering, software architecture, and effective communication with internal technical stakeholders.
Key Responsibilities:
Design and implementation
Data modelling for clinical trials simulations metadata
Research and select appropriate tools and infrastructure
Incorporate best practices such as CI/CD for ML models, model versioning, automated retraining, monitoring, validation automation, etc.
Ensure reproducibility and scalability
Model integration, validation automation, etc.
Tooling to enable trial and simulation metadata input
Requirements:
Advantage: