Staff ML Platform Engineer Scalable Healthcare ML Pipelines

Datavant

Bismarck (ND)

On-site

USD 224,000 - 280,000

Full time

11 days ago
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Job summary

Datavant is seeking a Staff ML Platform Engineer to lead the ML Platform team, driving direction for training, serving, and observability. You will own the paved-road framework to enable Data Science teams to move from config to production with minimal bespoke plumbing.

You will architect LLM-endpoint serving across Databricks, AWS, and self-hosted deployments, ensure PHI-safe routing, and mentor engineers while hands-on coding infrastructure.

Qualifications

  • 10+ years of software engineering experience, with 3+ years designing, evolving, and operating enterprise-scale ML platforms in production
  • Strong technical judgment under ambiguity and a track record of setting standards, influencing peers, and raising the bar across teams
  • Hands-on production experience with Databricks and/or Amazon SageMaker, MLflow (or an equivalent tracking + registry system), and at least one core ML framework (PyTorch, TensorFlow, or similar)
  • Fluency in Java (or a JVM equivalent) and Python, with real depth in Apache Spark for large-scale data and distributed compute
  • Real depth in AWS: networking, IAM, GPU compute, and the storage and messaging services this role touches
  • Fluency with Terraform, containers, Kubernetes, and GitHub-based CI/CD for ML workloads
  • Direct experience serving LLMs in production, including cost management, evaluation harnesses, and safe handling of sensitive prompts and outputs
  • AI-native working style: daily use of Claude Code, Cursor, Copilot, or equivalent
  • Clear written and verbal communication, especially in async, remote settings

Responsibilities

  • Set technical direction across ML training, serving, and observability, and be the final escalation point for the most elusive infrastructure problems (GPU capacity, Spark tuning, production incidents)
  • Own and evolve our paved-road framework (the shared CI/CD spine, model-workflow scaffolding, and Databricks Asset Bundles) so Data Science teams can go from a config file to a production workflow without bespoke plumbing
  • Lead architecture for LLM-endpoint serving across managed providers (Databricks, AWS, Snowflake) and self-hosted deployments, covering latency, cost, caching, evaluation, and PHI-safe routing
  • Own the standards and tooling for MLflow, model registry, training image supply chain, and observability across training and inference
  • Partner closely with your Data & ML Platform teammates to present a cohesive ML platform to the Data Science, App Dev, and Operations teams at Datavant
  • Serve as a key technical input to vendor and platform selection decisions across model providers, ML tooling, and observability
  • Mentor senior engineers on the team, provide technical guidance to platform consumers, and stay hands-on writing high-leverage code and Infrastructure-as-Code alongside your teammates

Skills

Databricks
SageMaker
MLflow
PyTorch
TensorFlow
Java
Python
Apache Spark
Terraform
Kubernetes

Tools

Databricks Asset Bundles
Unity Catalog
Iceberg/Delta
CI/CD (GitHub-based)

Job description

Datavant is seeking a Staff ML Platform Engineer to lead the ML Platform team, driving direction for training, serving, and observability. You will own the paved-road framework to enable Data Science teams to move from config to production with minimal bespoke plumbing.

You will architect LLM-endpoint serving across Databricks, AWS, and self-hosted deployments, ensure PHI-safe routing, and mentor engineers while hands-on coding infrastructure.

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