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[Remote] Machine Learning Engineer

Remote · USA Full-time New today

Note: The job is a remote job and is open to candidates in USA. Interwell Health is a kidney care management company focused on reimagining healthcare. They are seeking a Machine Learning Engineer who will be responsible for developing end-to-end machine learning solutions, collaborating with cross-functional teams, and implementing MLOps frameworks.

Responsibilities

  • Develop and deliver end‑to‑end machine learning solutions, including defining technical requirements, architecting scalable systems, and implementing monitoring, logging, and maintenance workflows
  • Collaborate closely with engineers, product managers, clinicians, and cross‑functional partners to build new ML products and enhance existing systems
  • Lead the design and implementation of MLOps frameworks, including pipeline development, CI/CD integration, drift detection, retraining workflows, and rollback strategies
  • Monitor model performance in production, identify issues, propose remediation steps, and ensure strong test coverage and system reliability
  • Utilize contemporary software engineering practices to implement scalable, secure, and maintainable AI/ML systems
  • Develop and customize API integrations to enable seamless connectivity between cloud‑based systems and ML services
  • Participate in architectural discussions to ensure ML platforms meet compliance, performance, and scalability standards

Skills

  • Bachelor's degree in Computer Science, Data Analytics, Software/Computer Engineering, Computational Statistics, Mathematics, or a related discipline
  • 3+ years of end‑to‑end ML development in production (data prep, feature engineering, modeling, calibration, deployment, monitoring, maintenance)
  • 3+ years of MLOps experience building production pipelines (CI/CD, model registry, feature store), implementing monitoring & drift detection, and automating retraining
  • 3+ years of Python for production ML (testing, packaging, type hints, linting) and SQL for analytical and production workloads; Scala a plus
  • 2+ years working with distributed compute and cloud ML environments (e.g., Spark/Databricks on Azure/AWS/GCP) and modern data ecosystems (data lakes, DBMS)
  • Strong debugging and optimization skills across data and ML workflows
  • Track record of ownership and problem solving—driving measurable impact and quality under ambiguity and evolving requirements
  • Ability to communicate technical decisions clearly and contribute to documentation and design discussions
  • Demonstrated system design & architecture skills for scalable, high‑performance ML services and batch/streaming workflows; familiarity with API design and service integration patterns
  • Proven understanding of tradeoffs in latency, cost, performance, and compliance
  • 1+ years of Databricks experience + some experience in infrastructure/networking
  • 1+ years implementing LLM‑based solutions in production (prompt/response design, evaluation frameworks, guardrails/safety, latency/cost optimization)
  • 1+ years designing compliant ML platforms (e.g., HIPAA, SOC 2) and working with PHI/PII governance, access controls, and auditability

Company Overview

  • InterWell Health is a national physician-centric partnership between Fresenius Medical Care North America. It was founded in 2019, and is headquartered in Waltham, Massachusetts, USA, with a workforce of 501-1000 employees. Its website is https://interwellhealth.com/.
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