Cloud Infrastructure Engineer (AI/ML)

HC2022 MIM Software Inc.

Beachwood (OH)

On-site

USD 120,000 - 170,000

Full time

14 days+

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Benefits offered by this job

Relocation assistance

Job summary

GE HealthCare in Beachwood, Ohio, seeks a cloud engineering specialist to advance research computing and ML operations. You will design and deploy scalable AWS environments, build MLOps pipelines, and develop internal tools to accelerate experimentation and model deployment.

You will collaborate with researchers, engineers, and infrastructure partners, mentor junior engineers, and promote best practices in code quality, testing, and governance across multiple projects.

Qualifications

  • Bachelor's degree in CS, engineering, or related field.
  • 2–4 years in DevOps, SRE, cloud infra, or related roles.
  • Experience supporting production systems on AWS.

Responsibilities

  • Migrate, optimize, and support research workloads on AWS.
  • Design, build, and maintain MLOps pipelines for training, evaluation, deployment, and monitoring.
  • Develop prototypes and internal tools to accelerate experimentation and research workflows.
  • Translate research objectives into scalable, maintainable engineering solutions.
  • Promote code quality, testing, and reliability, plus documentation and governance.

Skills

AWS cloud platforms
MLOps pipelines
CI/CD tooling
Linux systems
Leadership

Education

Bachelor's degree in Computer Science or related field

Tools

Terraform
Ansible
Docker
Kubernetes
GitHub Actions

Job description

Job Description Summary

Are you passionate about building reliable cloud infrastructure that helps researchers innovate faster? In this role, you will work at the intersection of cloud engineering, machine learning operations, and research computing, helping teams develop, test, and deploy cutting‑edge solutions that advance MIM Research initiatives. You'll collaborate with researchers, engineers, and infrastructure partners to create scalable AWS‑based environments, develop internal tools, and build engineering solutions that enable impactful research. We are looking for someone who enjoys solving complex problems, learning new technologies, and working in a collaborative, mission‑driven environment.

Key Responsibilities
  • Partner with DevOps and infrastructure teams to migrate, optimize, and support research workloads on AWS cloud platforms.
  • Design, build, and maintain machine learning operations (MLOps) pipelines that support model training, evaluation, deployment, and monitoring.
  • Develop prototypes and internal tools that accelerate experimentation, model development, and research workflows.
  • Translate research objectives into scalable, maintainable, and well‑documented engineering solutions.
  • Promote and support engineering best practices, including code quality, testing, and reliability, documentation and version control, data management and governance, experiment tracking and reproducibility.
  • Effectively manage multiple projects while balancing fast‑paced research needs with long‑term engineering sustainability.
  • Provide technical guidance and mentorship to early‑career engineers and support knowledge sharing across teams.
  • Collaborate closely with research scientists, product teams, and infrastructure partners to deliver impactful solutions.
Required Qualifications
Education & Experience
  • Bachelor's degree in Computer Science, Engineering, or a related field, or equivalent practical experience.
  • 2 to 4 years of experience in DevOps, Site Reliability Engineering (SRE), cloud infrastructure, or related technical roles.
  • Experience supporting production systems within Amazon Web Services (AWS).
Cloud & Infrastructure
  • Experience working with AWS services such as: EC2, ECS, EKS, Lambda, S3, EFS, DynamoDB, SageMaker (training, pipelines, and deployment).
  • Experience with Infrastructure as Code (IaC) tools such as Ansible, Terraform, CloudFormation, or AWS CDK.
  • Familiarity with containerization and orchestration technologies such as Docker, Docker Compose, and Kubernetes.
DevOps & Data Engineering
  • Experience building and maintaining continuous integration and continuous deployment (CI/CD) systems with GitHub Actions, GitLab CI, or Jenkins.
  • Strong foundation in Linux systems administration.
  • Experience with monitoring and observability practices using Prometheus, Datadog, or similar technologies.
Programming & Software Engineering
  • Understanding of software engineering best practices, including software design patterns, API development (REST and gRPC), testing methodologies, and maintainable code architecture.
Research & Applied Machine Learning
  • Experience supporting research environments or collaborating closely with research teams.
  • Ability to work effectively with evolving requirements, experimentation, and iterative development processes.
Collaboration & Leadership
  • Ability to lead technical initiatives involving multiple stakeholders and cross‑functional teams.
  • Experience mentoring engineers and supporting the adoption of engineering best practices.
  • Strong communication skills with the ability to connect technical concepts across research and engineering audiences.
Preferred Qualifications
  • Experience with large‑scale distributed computing frameworks such as Spark or Ray.
  • Background in high‑performance computing (HPC) or research computing environments.
  • Familiarity with data governance, compliance requirements, or regulated industries.
  • Contributions to open‑source projects or published research.
  • Relevant certifications such as RHCSA, RHCE, CKAD, AWS Certified Solutions Architect – Associate, or equivalent hands‑on experience.
What Success Looks Like
  • Research teams can efficiently train, evaluate, and deploy machine learning models.
  • Reliable and scalable infrastructure enables research teams to innovate with confidence.
  • Best practices for reproducibility, testing, governance, and documentation are consistently adopted.
  • Engineers at all levels receive mentorship and opportunities to grow.
  • Projects are delivered effectively and aligned with organizational priorities.
  • Research and engineering teams work together seamlessly to accelerate meaningful outcomes.
Why Join Us
  • Help build technology that empowers researchers and drives innovation.
  • Work alongside collaborative teams of researchers, engineers, and technical leaders.
  • Contribute to meaningful projects with real‑world impact.
  • Grow your technical expertise across cloud infrastructure, machine learning operations, and research computing.
  • Share knowledge, mentor others, and continue developing your leadership skills in a supportive environment.
  • Be part of a culture that values diverse perspectives, continuous learning, and inclusive collaboration.
Relocation Assistance

Provided: Yes

Equal Opportunity Employer

GE HealthCare offers a great work environment, professional development, challenging careers, and competitive compensation. GE HealthCare is an Equal Opportunity Employer. Employment decisions are made without regard to race, color, religion, national or ethnic origin, sex, sexual orientation, gender identity or expression, age, disability, protected veteran status or other characteristics protected by law. GE HealthCare will only employ those who are legally authorized to work in the United States for this opening. Any offer of employment is conditioned upon the successful completion of a drug screen (as applicable). While GE HealthCare does not currently require U.S. employees to be vaccinated against COVID‑19, some GE HealthCare customers have vaccination mandates that may apply to certain GE HealthCare employees.

Note

#LI-CC1

We’ll see possibilities through innovation. We’re partnering with our customers to fulfill healthcare’s greatest potential through groundbreaking medical technology, intelligent devices, and care solutions. Better tools enabling better patient care. Together, we are not only building a healthier future but living our purpose to create a world where healthcare has no limits.

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