Sr. Applied Scientist/Sr. ML scientist, EU Prime and Marketing Analytics & Science; PRIMAS
Publicado en 2026-01-11
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TI/Tecnología
Analista de datos, Científico de datos
Sr. Applied Scientist / Sr. ML scientist, EU Prime & Marketing Analytics & Science (PRIMAS)
Are you interested in defining the science strategy that enables Amazon to market to millions of customers based on their lifecycle needs rather than one-size-fits-all campaigns?
We are seeking a Senior Applied Scientist to lead the science strategy for our Lifecycle Marketing Experimentation roadmap within the PRIMAS (Prime & Marketing analytics and science) team. The position is open to candidates in Amsterdam and Barcelona.
In this role, you will own the end-to-end science approach that enables EU marketing to shift from broad, generic campaigns to targeted, cohort-based marketing that changes customer behavior. This is a high-ambiguity, high-impact role where you will define what problems are worth solving, build the science foundation from scratch, and influence senior business leaders on marketing strategy. You will work directly with Business Directors and channel leaders to solve critical business problems: how do we win back customers lost to competitors, convert Young Adults to Prime, and optimize marketing spend by de-averaging across customer cohorts.
Keyjob responsibilities Science Strategy & Leadership
The PRIMAS (Prime & Marketing Analytics and Science) team supports the science & analytics needs of the EU Prime & Marketing organization, an organization that supports the Prime and marketing programs in European marketplaces and comprises 250‑300 employees.
The PRIMAS team is part of a larger tech team of 100+ people called WIMSI (WW Integrated Marketing Systems and Intelligence). WIMSI’s core mission is to accelerate marketing technology capabilities that enable de‑averaged customer experiences across the marketing funnel: awareness, consideration, and conversion.
Qualifications- Experience working with and influencing senior level stakeholders
- Ph.D. in a quantitative field such as statistics, mathematics, data science, business analytics, economics, finance, engineering, or computer science, or experience in data science, machine learning or data mining
- Experience working effectively with science, data processing, and software engineering teams
- Experience in customer lifecycle marketing or partner marketing management
- Applied Scientist with 7+ years of experience in applied machine learning and customer analytics
- Track record of defining science strategy for new problem spaces
- Experience with advanced modeling techniques (Markov models, sequential models, causal inference)
- Experience with experimental design principles and causal inference…
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