Hello Heart

Machine Learning Engineer

Hello Heart Tel Aviv, Tel-Aviv District, Israel

Wellness and Fitness Services · 201-500 employees

13 h ago
machine-learning Senior (5-10 yrs) Full-time Israel
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About the role

You will lead the end-to-end development of predictive machine learning models, covering everything from feature engineering to deployment and monitoring. Additionally, you will collaborate with cross-functional teams to translate user behavior and clinical needs into scalable, production-ready data solutions.

What they look for

Machine Learning Python PyTorch Scikit-learn XGBoost LightGBM CI/CD Model Deployment Feature Engineering Causal Inference Deep Learning Reinforcement Learning Statistical Modeling Experimental Design Observability Production-grade Coding

Requirements

The role requires 5+ years of experience in end-to-end ML pipeline ownership and strong proficiency in writing production-grade, maintainable code. Candidates must have expertise in ML frameworks like PyTorch or XGBoost and a solid understanding of statistical concepts for effective model implementation.

Full description

About Hello Heart:

Hello Heart is on a mission to make heart attacks a thing of the past.

We’re an AI company focused exclusively on heart health, building a platform that predicts and prevents cardiac events before they happen—identifying risk up to 10 days in advance versus 10 years in traditional clinical models.

This is already working at scale. Hello Heart has been shown to reduce inpatient hospital days by 47% and deliver ~$1,800 in annual savings per member. Hello Heart is the cardiac prevention partner to over 80% of large U.S. health plans and serves hundreds of public and private employers.

We’re defining how the #1 cause of death—heart disease—is managed in the AI era. Join us.

About the Role

Hello Heart is seeking a Machine Learning Engineer to join the team that builds the predictive intelligence powering the Hello Heart app. You will own the ML models behind user engagement, cardiovascular risk stratification, and personalized health recommendations — the systems that determine what users see, when they're nudged, and how their health trajectories are shaped.

This role demands bringing models to production, owning all aspects — modeling, code, and deployment. You'll write production-ready code, optimize models for real constraints, and build systems that work at scale. You should be comfortable using AI coding assistants as a core part of your workflow and have a proven track record of shipping models to users.

Responsibilities

  • Lead end-to-end development of predictive ML models — from feature engineering, modeling, and training to serving, deployment, and ongoing monitoring. Work across engagement and clinical risk domains.
  • Write high-quality, maintainable, well-tested production-grade code, and own its observability, debugging, reliability, and scalability in production.
  • Use AI coding assistants to accelerate development, code review, testing, debugging, and documentation
  • Partner with product managers, data engineers, and software engineers to translate strategic questions and user behavior patterns into scalable, production-ready, data-driven solutions.
  • Research and implement cutting-edge ML techniques spanning supervised and unsupervised learning, causal inference, deep learning, and reinforcement learning to tackle complex healthcare challenges.
  • Build and maintain production ML infrastructure, including CI/CD, real-time model serving, versioning, evaluation pipelines, monitoring, and observability.
  • Design and interpret A/B tests and other experimental methodologies to measure the impact of models, features, and interventions.

Qualifications

  • Strong coding skills with experience writing production-grade, maintainable, well-tested code. Hands-on experience with CI/CD, real-time model serving, monitoring, and production debugging, comfortable owning reliability and scalability.
  • 5+ years of end-to-end ownership of ML pipelines — feature engineering, modeling, automated evaluation, deployment, and monitoring in production. Comfort with the statistical concepts needed to use models effectively: distributions, inference, hypothesis testing, and experimental design. Able to translate findings into clear insights and ensure models deliver what we need in a healthcare context.
  • Proficiency using AI coding assistants as a core part of the development workflow.
  • Expertise with ML frameworks such as PyTorch, scikit-learn, XGBoost, or LightGBM.

Hello Heart has a positive, diverse, and supportive culture - we look for people who are collaborative, creative, and courageous. Oh, and if you want to see some recent evidence of the fun things we do at Hello Heart, check out our Instagram page.

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