Lead AI/ML Engineer; P3227
Listed on 2025-10-25
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IT/Tech
AI Engineer, Machine Learning/ ML Engineer, Data Scientist, Data Engineer
Overview
Lead AI/ML/Optimization Engineer (G3) – Labs Innovation Focus. As a Senior AI/ML Engineer on the Labs team, you will serve as a hands-on technical lead responsible for both implementing robust code and guiding the architectural direction of ML/AI/optimization-based systems. This role blends deep engineering expertise, applied ML and optimization research, and system design to accelerate the transition from proof-of-concept to scalable business solution.
You will contribute code daily, mentor junior engineers, and collaborate with cross-functional partners to define, deliver, and scale the next generation of AI/ML/optimization capabilities across Kroger.
Company: 84.51° – a retail data science, insights and media company powering Kroger Precision Marketing and related solutions.
Responsibilities- Serve as a hands-on developer responsible for building and maintaining end-to-end ML, AI, and optimization-based solutions
- Lead technical design, implementation, and review processes for POCs and production-ready systems
- Lead end-to-end solution lifecycle—from rapid prototyping through to scaling and hand-off to production teams in partnership with other data scientists and engineers
- Partner with researchers and data scientists to co-develop, scale, and operationalize new algorithms
- Architect and implement robust ML(AI)
Ops pipelines that support experimentation, deployment, and monitoring - Build reusable ML components and APIs that enable modularity and scalability across business areas
- Evaluate and adopt emerging technologies and tooling that can enhance experimentation and delivery speed
- Drive technical best practices in code quality, documentation, observability, and team knowledge sharing
- Drive experimentation and benchmarking to select performant solutions that balance complexity and business value
- Contribute to Labs’ collaborative, research-forward culture by learning, sharing, and mentoring both junior and senior engineers and researchers
- Lead and participate in code reviews and technical architecture planning to ensure adherence to preferred patterns and standards
- Represent Labs in technical forums; mentor junior and peer engineers
- Collaborate with product and business stakeholders to align technical execution with innovation goals
- Bachelor’s or Master’s degree in Computer Science, Machine Learning, Applied Mathematics, or a related field
- 4+ years experience developing ML, AI, or optimization systems, including production deployment and scaling
- Strong software engineering fundamentals and daily coding experience in Python
- Deep proficiency in Python and fluency in Num Py, pandas, PySpark and at least 3 of the following ML/ML and optimization libraries:
PyTorch, Tensor Flow, scikit-learn, Pyomo - Hands-on experience architecting and product ionizing at least one type of optimization problem (e.g., network optimization, vehicle routing, scheduling, facility location, or resource allocation)
- Practical experience with at least one industry-standard optimization solver such as Gurobi, CPLEX, OR-Tools, Pyomo, PuLP, CBC, or SCIP
- Hands-on experience designing CI/CD and MLOps workflows using tools such as MLflow, Azure ML, or Databricks
- Familiarity with cloud platforms (Azure preferred), containerization (Docker), and orchestration (Kubernetes)
- Experience with modern software development practices including testing, logging, observability, and version control
- Ability to lead projects through ambiguity and collaborate in highly cross-functional teams
- Strong track record of partnering with researchers to translate early-stage ML ideas into deployable systems
- Experience prototyping and scaling AI solutions in applied environments
- Experience designing experiment platforms or reusable ML/optimization infrastructure
- Demonstrated leadership in evaluating trade-offs between performance, complexity, and maintainability
- Familiarity with real-time or batch data processing systems
- Leadership in navigating trade-offs between performance, complexity, and long-term maintainability
- The stated salary range represents the entire span applicable across all geographic…
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