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Manager, AI Engineering

Job in Milwaukee, Milwaukee County, Wisconsin, 53244, USA
Listing for: Koitecc Solutions
Full Time position
Listed on 2026-07-26
Job specializations:
  • Software Development
    AI Engineer (Applied/Software)
Salary/Wage Range or Industry Benchmark: 140000 - 190000 USD Yearly USD 140000.00 190000.00 YEAR
Job Description & How to Apply Below

Job Description

Rockwell Automation is a global technology leader focused on helping the world's manufacturers be more productive, sustainable, and agile. With more than 28,000 employees who make the world better every day, we know we have something special. Behind our customers - amazing companies that help feed the world, provide life-saving medicine on a global scale, and focus on clean water and green mobility - our people are energized problem solvers that take pride in how the work we do changes the world for the better.

We welcome all makers, forward thinkers, and problem solvers who are looking for a place to do their best work. And if that's you we would love to have you join us!

Job Description

Rockwell Automation is seeking a Manager, AI Engineering within the Integrated Supply Chain (ISC) AI Center of Excellence. This role will lead a team of AI Engineers responsible for architecting, building, deploying, and sustaining production-grade AI solutions across global supply chain operations.

The Manager, AI Engineering will own the technical engineering capability for ISC AI. This includes solution architecture, engineering standards, GenAI application development, reusable technical patterns, integration design, production reliability, and sustainment. This leader will work closely with AI Delivery, IT, Analytics, Cybersecurity, Data Governance, and business stakeholders to convert prioritized use cases into secure, scalable, maintainable AI solutions.

This position reports to the Senior Director, Digital Transformation and will work a hybrid schedule at our office in Milwaukee, WI.

Your Responsibilities:
  • AI Engineering Strategy & Architecture
    • Lead the ISC AI engineering function, including technical architecture, engineering standards, development practices, reusable patterns, and production support expectations.
    • Define solution approaches for GenAI applications, LLMs, RAG pipelines, prompt orchestration, agent-based workflows, document intelligence, knowledge assistants, and process automation.
    • Ensure AI solutions align with enterprise architecture, Azure AI platform standards, cybersecurity requirements, responsible AI expectations, and ISC data governance requirements.
  • Team Leadership & Engineering Capability
    • Lead, coach, and develop a team of AI Engineers responsible for building and supporting production-grade AI solutions across global supply chain use cases.
    • Establish engineering practices for code quality, documentation, version control, testing, prompt management, evaluation, deployment, monitoring, and support.
    • Build team capability in Python, APIs, Azure AI, LLM application development, RAG, vector databases, data integration, workflow automation, and enterprise software delivery.
  • Solution Development & Integration
    • Oversee the design and development of AI applications, including RAG-based assistants, agentic workflows, document processing, workflow automation, and AI-enabled business applications.
    • Guide model, framework, and tool selection based on accuracy, latency, cost, scalability, security, compliance, and maintainability.
    • Ensure AI solutions integrate with governed data sources, enterprise applications, Microsoft 365, SharePoint, Graph API, Power Platform, workflow tools, and internal supply chain systems where appropriate.
  • Production Reliability, MLOps & LLMOps
    • Establish CI/CD, automated testing, release management, telemetry, monitoring, incident response, and rollback practices for AI solutions deployed in production.
    • Define evaluation methods for LLM outputs, retrieval quality, prompt performance, model behavior, data quality, user feedback, and operational reliability.
    • Monitor production AI solutions for performance, cost, usage, failure modes, access issues, security risks, and continuous improvement opportunities.
  • Cross-Functional Technical Delivery
    • Partner with AI Delivery to assess technical feasibility, estimate engineering effort, sequence development work, and shape solution scope for prioritized use cases.
    • Coordinate with IT, Cybersecurity, Data Governance, Analytics, and platform teams to resolve architecture, data access, integration, infrastructure, and compliance…
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