Senior ML Ops Engineer

Posted 3 Days Ago
El Segundo, CA, USA
Hybrid
150K-220K Annually
Senior level
Artificial Intelligence • Healthtech
We save lives with AI-powered contactless monitoring, predictive analytics, and care coordination across post acute care
The Role
Own MLOps pipelines and platform reliability: build Airflow training/eval/deploy workflows, manage model registry and dataset lineage, deploy ML workloads on AWS with versioning and rollback, monitor drift and prediction quality, optimize compute costs, ensure HIPAA/SOC2 compliance, and contribute to model development alongside ML engineers.
Summary Generated by Built In

About Circadia Health

Circadia Health is a growth-stage healthcare AI company on a mission to prevent avoidable hospitalizations and transform senior-care operations. Our Circadia Intelligence Platform combines:

  • Contactless sensing that monitors respiration and motion with medical-grade accuracy

  • Native predictive models that detect 85% of preventable adverse events several days in advance

  • Enterprise integrations that operationalize predictions directly inside EHR, care-coordination, billing, and compliance workflows

Today, our technology touches 40,000+ post-acute patients daily across skilled-nursing, home-health, and home-care networks. We are backed by leading healthcare and AI investors and headquartered in El Segundo, CA.

Why this role exists

    Our models decide whether a care team walks into a room tonight. They train on 70,000 years of continuous vital signs joined to clinical records from more than 400,000 unique patients. When one of them degrades it does not surface as an error rate. It surfaces as a patient who deteriorated and nobody was alerted, which means the platform that trains, ships, and watches those models carries real clinical weight. You will own it: the pipelines, the path to production, and the monitoring that catches degradation before a clinician would.

What you'll own

  • Pipeline orchestration. Training, evaluation, and deployment workflows in Airflow, with automated retraining, promotion, and failure recovery.

  • Deployment and release. Models onto our platform on AWS including Batch, with versioning and rollback through MLflow, maturing toward shadow and canary releases.

  • Tracking and lineage. MLflow registry, conventions for artifacts and metadata, and dataset versioning so training runs are reproducible.

  • Monitoring and drift. Drift, prediction quality, and degradation alerting on models where degradation is clinically consequential.

  • ML compute and cost. AWS compute for training and inference, infrastructure-as-code, and cost optimization.

  • Hands-on model work. Contributing to model development alongside the ML engineering team, as a secondary focus behind the platform.

  • Compliance. HIPAA and SOC 2 across pipelines, with sound PHI handling in training data, artifacts, and outputs.

Required Qualifications

  • 4+ years in MLOps, ML engineering, DevOps, or a closely related infrastructure role
  • Strong Python for pipeline development, tooling, and automation
  • Hands-on Airflow, and a model registry such as MLflow
  • Deploying and operating ML workloads on AWS (Batch, EC2, S3, IAM, CloudWatch)
  • Containerization, infrastructure-as-code, SQL, and Snowflake
  • Building monitoring and alerting for production systems
  • Enough model development experience to contribute alongside ML engineers

Preferred

  • Model serving frameworks or data versioning tools
  • Healthcare, medical devices, or clinical data systems
  • Significant open source, systems that outlived your tenure, or a high-bar engineering background

Circadia Health is an Equal Opportunity Employer. We celebrate diversity and are committed to creating an inclusive environment for all employees. All employment decisions are based on business needs, job requirements, and individual qualifications, without regard to race, color, religion, sex (including pregnancy, sexual orientation, or gender identity), national origin, age, disability, genetic information, veteran status, or any other status protected by law.

Skills Required

  • 4+ years in MLOps, ML engineering, DevOps, or closely related infrastructure role
  • Strong Python for pipeline development, tooling, and automation
  • Hands-on Airflow and a model registry such as MLflow
  • Deploying and operating ML workloads on AWS (Batch, EC2, S3, IAM, CloudWatch)
  • Containerization, infrastructure-as-code, SQL, and Snowflake
  • Building monitoring and alerting for production systems
  • Enough model development experience to contribute alongside ML engineers
  • Model serving frameworks or data versioning tools
  • Healthcare, medical devices, or clinical data systems experience
  • Significant open source contributions or high-bar engineering background
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The Company
HQ: London
120 Employees
Year Founded: 2016

What We Do

Circadia Health helps reduce preventable rehospitalizations and save lives across the post-acute care continuum. Our AI-powered early detection system combines proprietary sensor technology – the Circadia C200 System (FDA-cleared) for contactless respiratory, heart rate, and motion monitoring – with EHR data and care coordination. We are venture-backed and in a rapid growth stage. Our US headquarters is in Los Angeles, and we have just opened an office in NYC.

Why Work With Us

We fuse hardware, software, data science, and clinical services to provide a full-stack virtual care delivery model across SNFs and Home. We are a team of designers, engineers, clinicians, and scientists.

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