A healthcare solutions company, Allied Benefit Systems offers insurance products and custom insurance services to individuals and businesses as one of the largest third-party admin
Senior Machine Learning Engineer
Location
Illinois
Posted
38 days ago
Salary
$150K - $185K / year
Seniority
Senior
Job Description
Senior Machine Learning Engineer
Allied Benefit Systems
Role Description The Senior Machine Learning Engineer is responsible for designing, building, and deploying scalable machine learning systems that drive business impact. This role will partner closely with data scientists, AI Technical Product Owners, and engineering teams to integrate machine learning capabilities into real business processes. The emphasis is on operational excellence, scalability, and long-term maintainability rather than research and experimentation. Essential Functions - Design and implement end to end machine learning pipelines that support data ingestion, feature generation, model training, validation, deployment, and monitoring. - Operationalize models in coordination with data scientists and ensure they run reliably with requisite alerts and monitoring in production environments. - Build reusable frameworks and patterns that reduce friction when deploying new models or updating existing ones. - Ensure pipelines are secure, auditable, and appropriate for use in regulated enterprise environments. - Own and evolve the MLOps toolchain that supports model versioning, artifact management, experiment tracking, and deployment workflows. - Implement continuous integration and deployment practices for machine learning systems. - Establish monitoring and alerting for model performance, data quality, drift, and system health. - Partner with cloud and platform teams to manage compute resources, cost controls, and environment configurations. - Work with application engineering teams to integrate machine learning outputs into downstream systems and user workflows. - Support real time and batch inference patterns depending on business needs. - Ensure that machine learning services meet performance, reliability, and availability expectations for production use. - Collaborate closely with data scientists to shape models that are production ready and operationally sustainable. - Provide guidance on feature engineering, model packaging, and performance tradeoffs from a deployment perspective. - Document standards, patterns, and best practices for building and operating machine learning systems. - Contribute to the maturation of the organization’s overall AI and ML engineering discipline. - Other duties as assigned. Qualifications - Bachelor’s degree in Computer Science, Math, Statistics, or equivalent work experience required. - 6+ years of strong experience building and operating machine learning systems in production environments. - Solid software engineering skills with Python and familiarity with modern ML frameworks such as PyTorch or TensorFlow. - Experience with data pipelines, workflow orchestration, and model deployment patterns. - Hands on experience with cloud platforms and managed ML services, with Azure, AWS, and/or Databricks experience preferred. - Understanding of MLOps concepts including model versioning, monitoring, testing, and lifecycle management. - Experience working with sensitive data in regulated industries such as healthcare or insurance is strongly preferred. - Ability to work cross functionally and translate between data science, engineering, and business stakeholders. Requirements - Accountability - Analytical Problem Solving - Collaboration - Execution and Delivery - Quality and Risk Management - Systems Thinking - Technical/Functional Expertise Physical Demands - This is a standard desk role requiring extended sitting and computer work. Work Environment - Remote - Reliable internet service is essential for staying connected and productive. Benefits - Medical, Dental, Vision, Life and Disability Insurance - Generous Paid Time Off - Tuition Reimbursement - EAP - Technology Stipend
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