Senior MLOps Engineer (Remote)

Posted Yesterday
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Hiring Remotely in 0900, Wellsford, Auckland, NZL
In-Office or Remote
Senior level
eCommerce • Retail
The Role
Build and operate scalable machine learning infrastructure across the full ML lifecycle. Responsibilities include model serving, training environments, orchestration, ETL pipelines, cloud tooling, monitoring, alerting, automated testing, CI/CD, cost management, and reusable MLOps frameworks. The role partners closely with data scientists and engineers, supports production ML deployments, establishes best practices, and uses GCP services including Vertex AI, BigQuery, and Dataproc.
Summary Generated by Built In

Role Specific Information

Job Description

About the Role

As Senior MLOps Engineer, you will focus on supporting cross-functional teams in designing, deploying, and operating machine learning solutions while building scalable infrastructure, tools, and best practices across the Machine Learning Engineering (MLE) ecosystem.

What You’ll Do

  • Collaborate with Data Scientists and Engineers across the full ML lifecycle, including building and scaling ETL pipelines, deploying models into customer-facing applications, and enabling efficient model development through cloud infrastructure and tooling

  • Design, build, and maintain scalable machine learning infrastructure, including model serving (real-time and batch), training environments, and orchestration systems, with a focus on performance, scalability, and cost efficiency

  • Contribute to the roadmap for Machine Learning Engineering and Data Science tools, including developing reusable frameworks and standardized solutions to streamline model implementation

  • Partner with and support Data Scientists by enabling effective use of cloud-based tools and infrastructure, and providing technical expertise across the ML lifecycle

  • Collaborate with machine learning engineers to share knowledge, improve best practices, and foster a culture of continuous learning and development

  • Support development and maintain monitoring, alerting, and automated testing frameworks to ensure the reliability, performance, and integrity of data pipelines, models, and infrastructure

  • Develop, document, and communicate implementations and best practices across the data science lifecycle

  • Manage and communicate cloud infrastructure costs and budgets to project stakeholders

  • Stay current with GCP services and evolving best practices in Machine Learning Engineering and MLOps

  • Additional tasks may be assigned

What Skills You Have

Required

  • Experience in MLOps or DevOps practices, including building and operating production ML systems using Docker, Kubernetes, CI/CD pipelines, Git-based version control, API development, model serving (batch and real-time), and automated testing frameworks

  • Bachelor’s degree in Data Science, Computer Science, Statistics, Applied Mathematics or equivalent quantitative field

  • Experience working with Data Scientists to deploy, scale, and operationalize machine learning models in production environments

  • 3+ years of experience as a Machine Learning Engineer with a proven track record of successful project delivery

  • In-depth knowledge of cloud platform, preferably Google Cloud Platform services, particularly Vertex AI, BigQuery and Dataproc.

  • Extensive expertise with CI/CD and 

  • IaC best practices

  • Extensive knowledge of distributed computing and big data technologies like Spark, Kubeflow, Airflow and SQL

  • Extensive expertise in Python and machine learning libraries (e.g., TensorFlow, PyTorch, scikit-learn)

  • Experience working in Agile environments with an emphasis on iterative development and continuous delivery

Preferred

  • Master’s Degree 

  • Proficiency in Java or other languages

  • Retail experience

  • E-commerce experience

  • 5+ years of experience in Machine Learning

  • Experience with optimization techniques and tools (e.g., Gurobi, linear programming, mixed-integer programming)

  • Experience working with agent based or agentic AI systems, including orchestration of autonomous workflows or LLM-driven agents

Essential Functions

The requirements listed below are representative of functions you will be required to perform, however you may be required to perform additional functions. Kohl’s may revise this job description from time to time. To perform this job successfully, you must be able to perform each essential function satisfactorily. Reasonable accommodations may be made to enable individuals with disabilities to perform the essential functions, absent undue hardship.

  • Ability to perform the accountabilities listed in the “What You’ll Do” Section

  • Ability to maintain prompt and regular attendance as set by the company 

  • Ability to work at least 8 hours per day, occasionally longer when necessary to meet business needs, 5 days per week

  • Ability to comply with dress code requirements

  • Ability to learn and comply with all company policies, procedures, standards and guidelines

  • Ability to give direction and receive, understand and proactively respond to direction from leadership and other company personnel

  • Ability to work as part of a team and interact effectively and appropriately with others

  • Ability to maintain composure and work in a fast paced environment while accomplishing multiple tasks within established timeframes

  • Ability to satisfactorily complete company training programs

  • Perform work in accordance with the Physical/Cognitive Requirements section

Physical/Cognitive Requirements 

  • Ability to use a personal computer for tasks such as communicating, preparing reports, etc.

  • Ability to plan, prioritize and monitor activities across business units

  • Ability to complete or oversee the completion of assigned projects in a timely manner

  • Ability to comply with health and safety standards

Skills Required

  • Experience in MLOps or DevOps practices, including Docker, Kubernetes, CI/CD, Git-based version control, API development, model serving, and automated testing
  • Bachelor's degree in Data Science, Computer Science, Statistics, Applied Mathematics, or an equivalent quantitative field
  • Experience deploying, scaling, and operationalizing machine learning models in production with Data Scientists
  • 3+ years of experience as a Machine Learning Engineer with successful project delivery
  • In-depth knowledge of cloud platforms, preferably Google Cloud Platform, including Vertex AI, BigQuery, and Dataproc
  • Extensive expertise with CI/CD and Infrastructure as Code best practices
  • Knowledge of distributed computing and big data technologies including Spark, Kubeflow, Airflow, and SQL
  • Extensive expertise in Python and machine learning libraries such as TensorFlow, PyTorch, and scikit-learn
  • Experience working in Agile environments with iterative development and continuous delivery
  • Master's degree
  • Proficiency in Java or other programming languages
  • Retail experience
  • E-commerce experience
  • 5+ years of experience in Machine Learning
  • Experience with optimization techniques and tools such as Gurobi, linear programming, or mixed-integer programming
  • Experience with agent-based or agentic AI systems, including autonomous workflow or LLM-driven agent orchestration

Kohl's Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Kohl's and has not been reviewed or approved by Kohl's.

  • Retirement Support — Feedback suggests the 401(k) plan is a standout, offering a dollar‑for‑dollar company match up to 5% with contributions available from day one. Eligibility and vesting mechanics are presented as straightforward for eligible roles.
  • Parental & Family Support — Paid parental leave includes 12–14 weeks for birthing parents and 6 weeks for other eligible parents. Feedback suggests this is a meaningful family‑support element within the package.
  • Wellbeing & Lifestyle Benefits — The package includes a 15% everyday associate discount that can rise to 35% on select days, access to an Employee Assistance Program, and low‑ or no‑cost wellness centers in eligible locations. Feedback suggests these everyday perks add tangible value alongside core benefits.

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The Company
HQ: Menomonee Falls, WI
Year Founded: 1962

What We Do

Kohl’s is a leading omnichannel retailer with more than 1,100 stores in 49 states Kohl's business is built on a solid foundation of more than 65 million customers, an unmatched brand portfolio, industry-leading loyalty and Kohl's Card programs, a convenient and accessible nationwide store footprint, and large digital business on Kohls.com and the Kohl's mobile app. Our Vision: - The retailer of choice for the active and casual lifestyle - Destination for active and casual lifestyle as well as beauty for the entire family — from the most trusted brands, always delivering quality and discovery - Leading with loyalty and value through best-in-class rewards programs - Differentiated omnichannel experience — easy and inviting, no matter how our customer wants to shop

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