Sr Principal ML Engineer – eCommerce & Personalization

Autodesk
10 LocationsPosted 8 March 2026

Job Description

Job Requisition ID # 25WD90525 About the Team At GET (Growth Experience Technology), we’re transforming how customers discover, buy, and use Autodesk. Our mission is to build seamless, data-informed digital experiences that are intuitive, personalized, and scalable—empowering both our customers and internal teams. We’re investing in smarter platforms, connected sales and marketing systems, and technologies that unlock deeper customer insights and faster decision-making. The Role We’re looking for a Principal (Staff) Machine Learning Engineer to help shape the future of Autodesk’s B2C eCommerce platform. This role involves full-lifecycle ownership—from ideation and modeling to deployment and optimization. You’ll collaborate across disciplines to develop intelligent systems that personalize user experiences and deliver measurable impact. If you’re passionate about solving ambiguous business problems and building scalable ML systems—even if you don’t meet every qualification—we encourage you to apply. What You’ll Do Guide the design, training, and deployment of ML models for real-time personalization across Autodesk’s eCommerce ecosystem. Collaborate with Product Managers and Experience Designers to define what and how personalization should be implemented. Translate business pain points into scalable ML or analytics solutions. Work closely with the MLOps team to productionize models and ensure real-time inference performance. Develop experimentation frameworks and run A/B tests to measure impact (e.g., CTR, bounce rate, add-to-cart rate). Build models that scale across product categories, including third-party integrations for Autodesk’s evolving marketplace. Promote a data-informed culture by contributing to initiatives in segmentation, recommendation systems, forecasting, churn prediction, and product analytics. Mentor and support team members, fostering a collaborative and inclusive environment. Qualifications We recognize that talent comes in many forms. If you meet most of the criteria and are excited about the role, we’d love to hear from you. Preferred Experience Background in Data Science, Statistics, Computer Science, or a related field (we also welcome applicants from non-traditional DS backgrounds) 7+ years of hands-on related experience. We value experience with machine learning infrastructure, model deployment, optimization and with software design, architecture, and product development. Knowledge of data mining, information retrieval, and statistical modeling. Exposure to A/B testing and experimental design. Experience applying statistical and probabilistic methods to solve real-world problems; familiarity with financial modeling is a plus. Ability to connect data insights to business outcomes. Experience in eCommerce, marketing technology, go-to-market systems, or other high-scale data environments (e.g., fintech, social platforms). Bonus Experience (Not Required) Advanced degree preferred but not required. Equivalent industry experience is highly valued. Familiarity with cloud ML platforms (AWS, Azure) and MLOps practices. Experience with personalization systems and real-time inference pipelines. Why Autodesk? Work on high-impact projects that shape the future of digital commerce. Collaborate with a diverse and talented team of engineers, scientists, and product leaders. Enjoy flexible work arrangements and a culture that values innovation, learning, and inclusion. 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 sh ... (truncated, view full listing at source)
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