As a Senior Applied Scientist specializing in Large Language Models (LLMs) and Agents in the Product Intelligence team you will lead the development of machine learning solutions. Your work will leverage the latest LLMs and multimodal models to enhance product graphs measure entity similarity perform entity linking and attribute normalization and apply advanced reasoning methods for a deeper understanding of products. You will also lead research projects to tackle unsolved problems mentor interns and author academic papers to summarize your findings for external publication.
This highimpact role is critical to our core business influencing the reliability of information for billions of products on Amazons platform and impacting the shopping journey for hundreds of millions of customers. The systems you build will be used to monitor Amazons entire product selection to ensure their quality the availability of accurate price distributions and more.
We seek an experienced scientist with deep knowledge of LLMs and Agents and a good understanding of traditional machine learning and quantitative methods. The role will also require crossfunctional collaboration skills and staying up to date with the latest advancements in Generative AI.
Key job responsibilities Implement and deploy systems that leverage LLMs and other techniques to address some of hardest problems in the pricing space.
Set scientific standards and see the big picture to influence Amazons longterm vision for retail pricing science.
Work crossfunctionally with various teams to align machine learning initiatives with business goals and execute them successfully.
Lead research projects and participate in the publication of external academic papers at top conferences and journals.
About the team Retail pricing science is a centralized diverse team of STEM scientists that develop statistical ML RL optimization and economic models that drive pricing for products sold by Amazon worldwide as well as monitoring of prices and experimentations in pricing. The team has a dual focus on competitiveness and long term financial optimality.
PhD or Masters degree and 10 years of applied research experience 4 years of applied research experience 4 years of building machine learning models for business application experience Experience programming in Java C Python or related language Experience with neural deep learning methods and machine learning
PhD in engineering technology computer science machine learning robotics operations research statistics mathematics or equivalent quantitative field Experienced with ML techniques in anomaly an error detection. Strong hands on background with deep learning frameworks such as TensorFlow or pytorch. Familiarity with weak supervision and semisupervised techniques.
Amazon is committed to a diverse and inclusive workplace. Amazon is an equal opportunity employer and does not discriminate on the basis of race national origin gender gender identity sexual orientation protected veteran status disability age or other legally protected status.
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