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Senior Machine Learning Engineer, MLOps

Autodesk

Portland · On-site Full-time Senior $131k – $236k/yr Today

About the role

Job Requisition ID #

26WD96432

Position Overview

The work we do at Autodesk touches nearly every person on the planet. By creating software tools for making buildings, machines, and even the latest movies, we influence and empower some of the most creative people in the world.

As aSeniorMachine LearningEngineerfocused on Machine Learning Ops (MLOps) for CAD and BIM, you will ensure AI-powered experiences meet high standards for reliability, scalability, and operational excellence across Autodesk products. You will build and operate the infrastructure that takes models from development into production, including deployment automation, monitoring, and secure, scalable service integration. You will partner closely with researchers, evaluation engineers, and product teams to translate evaluation requirements into production quality gates, reduce operational risk, and continuously improve model performance in real customer environments.

You will report to a manager in the Model Delivery team within Autodesk Research. This role is based in proximity to our North American west coast offices, including San Francisco, Portland, and Vancouver. We support both in-person, hybrid, and remote work.

Responsibilities • Test and Deploy Production Models:Automate model testing and validation. Implement and operate CI/CD pipelines to enable safe, repeatable deployments and rollbacks. • Operate Inference Services:Provision and manage backend resources for inference (compute, containers, scaling), and tune performance, reliability, and cost in production. • Monitor Model Health and Performance:Define and continuously monitor health and performance metrics for deployed services. Triage issues by severity and drive timely resolution, including incident response and runbooks. • REST API Integration:Own end-to-end REST API integration, connecting backend model services to product and platform surfaces through scalable, containerized services. • Product Ownership and Cross-functional Collaboration:Work with researchers, evaluation engineers, product managers, and partner engineering teams to deliver production-ready solutions, communicate status and risks, and escalate when needed.

Minimum Qualifications • BS or MS in Computer Science, Computer Engineering, or equivalent industry experience. • 3+ years of professional software engineering experience building and operating production services. • Experience automating testing and deployments using CI/CD, including release workflows that support safe rollouts and rollbacks. • Experience building and operating cloud hosted, containerized services (for example Docker and Kubernetes or similar), including provisioning resources and scaling inference workloads. • Experience building REST APIs using Python based frameworks (or similar), and integrating backend services with product or platform consumers. • Strong software engineering fundamentals: version control, code quality, and writing maintainable, testable software. • Strong written communication skills to document architectures, runbooks, and operational processes.

Preferred Qualifications • Experience running production ML or LLM inference services, including performance tuning, cost optimization, and capacity planning. • Experience with observability tooling and practices (metrics, logging, tracing, alerting) and incident response in an on-call environment. • Experience deploying services within an enterprise internal platform environment with standardized pipelines, security controls, and compliance requirements. • Familiarity with rate limiting, authentication and authorization, and API security best practices. • Familiarity with design, manufacturing, or AEC workflows, and how backend services integrate into CAD/BIM product experiences. • Familiarity with Agile or Scrum ways of working.

Learn More

About Autodesk

Welcome to Autodesk! Amazing things are created every day with our software - from the greenest buildings and cleanest cars to the smartest factories and biggest hit movies. We help innovators turn their ideas into reality, transforming not only how things are made, but what can be made.

We take great pride in our culture here at Autodesk - it's at the core of everything we do. Our culture guides the way we work and treat each other, informs how we connect with customers and partners, and defines how we show up in the world.

When you're an Autodesker, you can do meaningful work that helps build a better world designed and made for all. Ready to shape the world and your future? Join us!

Benefits

From health and financial benefits to time away and everyday wellness, we give Autodeskers the best, so they can do their best work. Learn more about our benefits in the U.S. by visiting https://benefits.autodesk.com/

Salary transparency

Salary is one part of Autodesk's competitive compensation package. For U.S.-based roles, we expect a starting base salary between $131,400 and $235,950. Offers are based on the candidate's experience and geographic location, and may exceed this range. In addition to base salaries, our compensation package may include annual cash bonuses, commissions for sales roles, stock grants, and a comprehensive benefits package.

Equal Employment Opportunity

At Autodesk, we're building a diverse workplace and an inclusive culture to give more people the chance to imagine, design, and make a better world. Autodesk is proud to be an equal opportunity employer and considers all qualified applicants for employment without regard to race, color, religion, age, sex, sexual orientation, gender, gender identity, national origin, disability, veteran status or any other legally protected characteristic. We also consider for employment all qualified applicants regardless of criminal histories, consistent with applicable law.

Diversity & Belonging

We take pride in cultivating a culture of belonging where everyone can thrive. Learn more here: https://www.autodesk.com/company/diversity-and-belonging

Are you an existing contractor or consultant with Autodesk?

Please search for open jobs and apply internally (not on this external site).

Requirements

  • BS or MS in Computer Science, Computer Engineering, or equivalent industry experience
  • 3+ years of professional software engineering experience building and operating production services
  • Experience automating testing and deployments using CI/CD, including release workflows that support safe rollouts and rollbacks
  • Experience building and operating cloud hosted, containerized services (for example Docker and Kubernetes or similar), including provisioning resources and scaling inference workloads
  • Experience building REST APIs using Python based frameworks (or similar), and integrating backend services with product or platform consumers
  • Strong software engineering fundamentals: version control, code quality, and writing maintainable, testable software
  • Strong written communication skills to document architectures, runbooks, and operational processes

Responsibilities

  • As aSeniorMachine LearningEngineerfocused on Machine Learning Ops (MLOps) for CAD and BIM, you will ensure AI-powered experiences meet high standards for reliability, scalability, and operational excellence across Autodesk products
  • You will build and operate the infrastructure that takes models from development into production, including deployment automation, monitoring, and secure, scalable service integration
  • You will partner closely with researchers, evaluation engineers, and product teams to translate evaluation requirements into production quality gates, reduce operational risk, and continuously improve model performance in real customer environments
  • You will report to a manager in the Model Delivery team within Autodesk Research
  • Test and Deploy Production Models:Automate model testing and validation
  • Implement and operate CI/CD pipelines to enable safe, repeatable deployments and rollbacks
  • Operate Inference Services:Provision and manage backend resources for inference (compute, containers, scaling), and tune performance, reliability, and cost in production
  • Monitor Model Health and Performance:Define and continuously monitor health and performance metrics for deployed services
  • Triage issues by severity and drive timely resolution, including incident response and runbooks
  • REST API Integration:Own end-to-end REST API integration, connecting backend model services to product and platform surfaces through scalable, containerized services
  • Product Ownership and Cross-functional Collaboration:Work with researchers, evaluation engineers, product managers, and partner engineering teams to deliver production-ready solutions, communicate status and risks, and escalate when needed

Benefits

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