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Contribute to hiring: interview, raise the bar on engineering craft, and help grow the team through the active pipeline.
Develop engineers toward the full-stack AI/ML profile (data, modeling, services, application layers); mentor through code review and pairing.
Hands-on delivery (player-coach)Personally own and ship hard solutions end-to-end
Solution & product delivery
Cross-functional leadershipPartner with program and product-management teams on scope, priorities, and delivery commitments; communicate progress with evidence.
Operate within a global organizationCoordinate with functional leads and globally dispersed project teamsBuild products with global platforms and standards.
S
Stellantis
Manager, AI/ML Engineering
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What they do
A Product Engineering Manager oversees and leads conception, execution and launch of engineering products. Manages communication and coordination among different types of engineers, designers and analysts working on a project. Supervises project schedule, budget, and communications with stakeholders.
$154,730 / year median in Michigan
+3% projected growth
Job Description
Role Summary:
The Manager of AI/ML Engineering- North America leads a team of AI/ML engineers and delivers alongside them. This is a deliberate player-coach role: you manage, coach, and grow the team and stay hands-on
- personally designing, building, and shipping complete production AI/ML solutions, including the user touchpoints and applications on top of them.
- you lead by building
- and balances a team rooted in data science and ML with strong software and solution-delivery depth.
How We Operate:
Our products are owned end-to-end by engineering- from design through production and into maintain-and-optimize. Direction, requirements, and priorities come through our program and product-management partners. This is a deliberate operating model: the role succeeds through strong delivery inside that partnership
- shaping requirements, pushing back with evidence, and building trust
- not through sole control of product direction. Leaders here own products and stay close to the work; this is not a pass-through people-management position
- you are expected to contribute code and solutions directly.
Key Responsibilities:
Team leadership & growthLead and manage a AI/ML engineering team of engineers- day-to-day direction, coaching, performance, and career development.
Contribute to hiring: interview, raise the bar on engineering craft, and help grow the team through the active pipeline.
Develop engineers toward the full-stack AI/ML profile (data, modeling, services, application layers); mentor through code review and pairing.
Hands-on delivery (player-coach)Personally own and ship hard solutions end-to-end
- data pipelines, model/inference services, agentic/LLM components, APIs, and the user touchpoints (apps, dashboards) on top.
- you stay in the work, not just over it.
Solution & product delivery
- Own the team's delivery of production AI/ML solutions and their production health end-to-end.
- architecture, code review, testing, CI/CD.
Cross-functional leadershipPartner with program and product-management teams on scope, priorities, and delivery commitments; communicate progress with evidence.
Operate within a global organizationCoordinate with functional leads and globally dispersed project teamsBuild products with global platforms and standards.
Basic Qualifications:
Bachelor's degree in engineering, computer science, applied mathematics, or a related field, or related field. A minimum of 8 years in software engineering, including substantial hands-on solution development- services, APIs, and user-facing touchpoints/apps (front-end/full-stack)
- and experience leading or coordinating a team of engineers. A track record of shipping and operating production software
- you have owned systems in production, not just delivered projects
- and you remain hands-on today.
Preferred Qualifications:
Experience building agentic/LLM-based systems and adopting AI-assisted development tooling across a team. Automotive, industrial, IoT, or other regulated/embedded-adjacent domain experience; time-series or vehicle data a plus. Familiarity with MLOps concepts (CI/CD for ML, model registry, monitoring, retraining). Front-end/full-stack delivery experience (dashboards, internal tools, product UIs). A track record as a player-coach- leading a team while still contributing code.
Role Summary:
The Manager of AI/ML Engineering- North America leads a team of AI/ML engineers and delivers alongside them. This is a deliberate player-coach role: you manage, coach, and grow the team and stay hands-on
- personally designing, building, and shipping complete production AI/ML solutions, including the user touchpoints and applications on top of them.
- you lead by building
- and balances a team rooted in data science and ML with strong software and solution-delivery depth.
How We Operate:
Our products are owned end-to-end by engineering- from design through production and into maintain-and-optimize. Direction, requirements, and priorities come through our program and product-management partners. This is a deliberate operating model: the role succeeds through strong delivery inside that partnership
- shaping requirements, pushing back with evidence, and building trust
- not through sole control of product direction.