Machine Learning Engineer
Job in
Chicago, Cook County, Illinois, 60290, USA
Listed on 2026-01-12
Listing for:
EPITEC
Full Time
position Listed on 2026-01-12
Job specializations:
-
IT/Tech
AI Engineer, Machine Learning/ ML Engineer, Data Engineer
Job Description & How to Apply Below
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This range is provided by EPITEC. Your actual pay will be based on your skills and experience — talk with your recruiter to learn more.
Base pay range$70.00/hr - $75.00/hr
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Talent Trailblazer:Turning Resumes into Success Stories! 🌟
Senior MLOps Software Engineer
Location: Chicago, IL (Hybrid)
Job Type: W2 Contract
Schedule: Monday - Friday, 8:30am-4:30pm CST
Pay Rate: $70-75/hourly with optional benefits packages including PTO, medical insurance, and 401k
Job Summary- The MLOps Platform Team works within the Enterprise Data and Analytics Organization at Caterpillar.
- Driving the ability to work with Internal Teams to be able to support the full life-cycle of AI and machine learning development through to beyond production.
- Helping build a platform that enables data driven decisions across the enterprise, helping teams build high-value data and AI/ML products, and enable the operationalization and reliability of all models.
- We are searching for a driven and highly skilled MLOps Engineer to join our MLOps Platform team at Service Now.
- The role will build the MLOps Platform, build self-service ML Development tooling, and building platform adoption.
- You have ideas on how to create a great user experience for those building, deploying, and operationalizing production quality Machine Learning models.
- The MLOps Platform Team works within the Enterprise Data and Analytics Organization at Caterpillar.
- Driving the ability to work with Internal Teams to be able to support the full life-cycle of AI and machine learning development through to beyond production.
- Helping build a platform that enables data driven decisions across the enterprise, helping teams build high-value data and AI/ML products, and enable the operationalization and reliability of all models.
- We are searching for a driven and highly skilled MLOps Engineer to join our MLOps Platform team at Service Now.
- The role will build the MLOps Platform, build self-service ML Development tooling, and building platform adoption.
- You have ideas on how to create a great user experience for those building, deploying, and operationalizing production quality Machine Learning models.
- Define scalable and secure architectures, frameworks and pipelines for building, deploying and diagnosing production ML applications
- Enable users & teams on the ML platform; troubleshoot and debug user issues; maintain user-friendly documentation and training
- Collaborate with internal stakeholders to build a comprehensive MLOps Platform
- Design and implement cloud solutions and build MLOps pipelines on cloud solutions (e.g., AWS)
- Develop standards and examples to accelerate the productivity of data science teams
- Run code refactoring and optimization, containerization, deployment, versioning, and monitoring of its quality, including data & concept drift
- Create way to automate the testing, validation, and deployment of data science models
- Provide best practices and execute POC for automated and efficient MLOps at scale
- Bachelors degree with 5+ years experience
- Master’s degree with 3+ years experience
- 5+ years of experience working with an object-oriented programming language (Python, Golang, Java, C/C++ etc.)
- Experience with MLOps frameworks like MLflow, Kubeflow, etc.
- Proficiency in programming (Python, R, SQL)
- Ability to design and implement cloud solutions and build MLOps pipelines on cloud solutions (e.g., AWS)
- Strong understanding of Dev Ops principles and practices, CI/CD, etc. and tools (Git, Git Hub, jFrog Artifactory, Azure Dev Ops, etc.)
- Experience with containerization technologies like Docker and Kubernetes
- Strong communication and collaboration skills
- Ability to help work with a team to create User Stories and Tasks out of higher-level requirements
- Ability to create model inference systems with advanced deployment methods that integrate with other MLOps components like MLFlow
- Knowledge of inference systems like Seldon, Kubeflow, etc.
- Knowledge of deploying applications and systems in Langfuse or Kubernetes using Helm and Helmfile
- Knowledge of infrastructure orchestration using Clod Formation or Terraform
- Exposure to observability tools (such as Evidently AI)
- Someone who takes the initiative on their own
- Someone who does not need to be micromanaged
- Mid-Senior level
- Contract
- Engineering and Information Technology
- Industrial Machinery Manufacturing
Position Requirements
5+ Years
work experience
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