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Ralph Lauren Corporation seeks a Senior Data Engineer to design, build, and operate scalable data pipelines powering enterprise data products and AI use cases. You will work with Data Engineering leadership to ensure reliable, well-governed data assets and mentor junior engineers.
The role emphasizes hands-on delivery, code quality, and operational readiness, with collaboration across product, analytics, and platform teams to support reporting and insights.
Ralph Lauren Corporation (NYSE:RL) is a global leader in the design, marketing and distribution of premium lifestyle products in five categories: apparel, accessories, home, fragrances, and hospitality. For more than 50 years, Ralph Lauren's reputation and distinctive image have been consistently developed across an expanding number of products, brands and international markets. The Company's brand names, which include Ralph Lauren, Ralph Lauren Collection, Ralph Lauren Purple Label, Polo Ralph Lauren, Double RL, Lauren Ralph Lauren, Polo Ralph Lauren Children, Chaps, among others, constitute one of the world's most widely recognized families of consumer brands.
At Ralph Lauren, we unite and inspire the communities within our company as well as those in which we serve by amplifying voices and perspectives to create a culture of belonging, ensuring inclusion, and fairness for all. We foster a culture of inclusion through: Talent, Education & Communication, Employee Groups and Celebration.
The Senior Data Engineer designs, builds, and operates scalable data pipelines and curated datasets that power Ralph Lauren’s enterprise Data Products, analytics, and AI use cases, while providing technical depth and guidance to less experienced engineers on the team.
This role works closely with Data Engineering leadership, Data Product Managers, and platform teams to deliver reliable, well-governed, and reusable data assets, and is often looked to for design decisions on complex pipelines and data models.
The role is hands-on and execution-focused, with accountability for code quality, data reliability, and operational readiness, alongside a growing role in shaping engineering standards and mentoring junior engineers.