Sr. Manager MLOps Engineering

McKessonIrving, TX
2d

About The Position

McKesson is an impact-driven, Fortune 10 company that touches virtually every aspect of healthcare. We are known for delivering insights, products, and services that make quality care more accessible and affordable. Here, we focus on the health, happiness, and well-being of you and those we serve – we care. What you do at McKesson matters. We foster a culture where you can grow, make an impact, and are empowered to bring new ideas. Together, we thrive as we shape the future of health for patients, our communities, and our people. If you want to be part of tomorrow’s health today, we want to hear from you. Job Title Sr. Manager, MLOps Engineering Summary Lead the design and execution of McKesson’s MLOps strategy to enable scalable, secure, and efficient machine learning operations. This role drives innovation, governance, and collaboration across data science and engineering teams to deliver impactful AI solutions in healthcare.

Requirements

  • Proven experience leading MLOps or ML engineering teams in enterprise environments.
  • Expertise in cloud-native ML platforms (Azure ML, Databricks, AKS; AWS/GCP optional).
  • Strong knowledge of CI/CD for ML, containerization (Docker), orchestration (Kubernetes), and ML observability tools.
  • Solid understanding of model governance, Responsible AI principles, and compliance frameworks.
  • Excellent leadership, stakeholder management, and communication skills.
  • Degree or equivalent experience.
  • Typically requires 9+ years of professional experience and 1+ years of supervisory and/or management experience.

Nice To Haves

  • Experience with healthcare data compliance (HIPAA, PHI).
  • Familiarity with ML monitoring tools (e.g., MLflow, EvidentlyAI).
  • Knowledge of cost optimization strategies for cloud ML workloads.
  • Advanced degree in Computer Science, Data Engineering, or related field.

Responsibilities

  • Lead, mentor, and develop a high-performing MLOps engineering team, fostering a collaborative, innovative, and accountable culture aligned with organizational goals.
  • Define and drive the end-to-end MLOps lifecycle, including model development, CI/CD, testing, deployment, monitoring, retraining, and governance.
  • Architect and maintain scalable, secure, and cost-efficient ML infrastructure using cloud-native platforms (e.g., Azure ML, AKS, ADF, Databricks; AWS/GCP as needed).
  • Build and optimize automated pipelines and tools for model training, deployment, observability, and incident response to improve operational reliability and reduce manual effort.
  • Partner with data scientists, software engineers, product teams, and platform groups to deliver effective, repeatable, and well-governed MLOps workflows.
  • Establish and enforce best practices for model versioning, experiment tracking, data lineage, reproducibility, and model lifecycle documentation.
  • Implement and maintain robust monitoring, logging, and alerting systems to track model performance, data drift, system health, and infrastructure metrics.
  • Ensure compliance with Responsible AI standards, security protocols, and regulatory requirements, collaborating with legal and risk teams.
  • Oversee cloud resource allocation, budgeting, and cost optimization across ML workloads in partnership with finance and procurement.
  • Maintain comprehensive documentation, SOPs, and governance frameworks to support audits and ensure consistent and transparent MLOps practices.
  • Stay current with evolving MLOps trends, tools, and best practices, evaluating and integrating relevant innovations to enhance the platform.

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What This Job Offers

Job Type

Full-time

Career Level

Manager

Education Level

No Education Listed

Number of Employees

5,001-10,000 employees

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