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Apella
Digital Health & Health Tech
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Apella is applying computer vision and machine learning to improve the standard of care in the most critical aspect of healthcare: surgery. We build applications to enable surgeons, nurses, and hospital administrators to deliver the highest quality care.
We're looking for a senior machine learning engineer who would thrive at the intersection of MLOps, infrastructure, and production forecasting systems. You excel at building robust, automated ML pipelines that enable data scientists to iterate quickly while maintaining the reliability that our healthcare customers depend on.
You are a systems thinker who flourishes in a startup environment, working across the stack to productionize ML models, automate deployment pipelines, and establish the infrastructure that makes our forecasting platform scalable and maintainable. As a critical member of our Forecasting team, you'll work on production ML lifecycle - from training automation to serving infrastructure - and have the unique opportunity to shape the technical foundation of Apella's ML platform while growing our team's capabilities.
Collaborate closely with engineering, product, and data science teams to understand business challenges and the potential for machine learning and AI solutions.
Develop tools and automate manual processes to improve operational efficiency, accelerate experimentation velocity, and minimize human error.
Build, integrate, and monitor the end-to-end lifecycles of large-scale, distributed machine learning systems.
Investigate model performance and identify data quality and performance issues.
Enhance the ML pipeline for our forecasting platform, managing weekly automated model retraining and deployment across a range of production models
Elevate the team's technical capabilities in MLOps best practices, automation, and production ML systems.
5+ years of experience building and maintaining production ML systems, with deep expertise in MLOps, deployment automation, and model serving infrastructure
Strong software engineering skills with proficiency in Python, containerization (Docker/Kubernetes), CI/CD systems (GitHub Actions, ArgoCD), and infrastructure-as-code (Terraform, Helm)
Production ML deployment experience including model training orchestration (Dagster, Airflow, or similar), automated retraining pipelines, and A/B testing/variant management
Systems design expertise with experience building scalable microservices, API design, and managing complex service dependencies
Ownership mentality with a track record of driving projects from concept to production, maintaining them over time, and continuously improving system reliability
Excellent collaboration skills working with data scientists to productionize research, with backend teams on API integration, and with product org to meet customer needs
Passion for writing tested, maintainable, well-documented code that enables team velocity
Experience working in healthcare or other regulated industries.
Experience with Forecasting / Time Series algorithms
Experience with Computer Vision
Experience with DAG frameworks, Flink
Chat with Our Recruiter – A quick intro to get to know you and share more about Apella & the role.
Meet with the Hiring Manager – Discuss your experience and work through a relevant case or technical exercise.
Virtual Onsite Interviews – Meet a few team members and dive into areas like collaboration, culture, MLE coding skills, and system design. Typically 3-5 interviews.
Competitive salary and stock options
Flexible vacation policy and a culture that values time for rest and recharging
Remote-first work environment with unique virtual and in-person events to foster team connection
Comprehensive health, dental, and vision insurance—we're a healthcare company that prioritizes your health
16 weeks of parental leave for all parents
Apella is committed to equal employment opportunity regardless of race, color, ancestry, religion, sex, national origin, sexual orientation, age, citizenship, marital status, disability, gender identity or Veteran status. We encourage people from all backgrounds to apply to our roles.
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