Applied Scientist II, Global Trade
at Amazon
Posted 7 hours ago
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Applied Scientist II in Global Trade focuses on solving business problems in machine learning for Amazon's Seller and Fulfilment Tech (SFT) organization. The role emphasizes advancing ML model development, experimentation methodology, and staying current with external trends, including Generative AI and LLMs. It also contributes to science and research, extending techniques and publishing peer‑reviewed work to validate novelty. Responsibilities span areas such as selection recommendations, registration improvements, bad actor detection, selection economics, inventory recommendations, and delivery promise predictions to improve seller success and operations.
The overarching goal of the team is to enhance ML expertise and fluency within SFT and across IST, championing engineering and operational excellence in ML model development and other related parts of the ML model lifecycle. Some of the key areas which the team owns in this space area:
Selection Recommendations, Registration improvements, Bad actor detection and prevention
Selection economics, Inventory recommendation, Delivery Promise Predictions, Seller success.
Within the ML space, the scientist would have to solve intrinsically hard problems where neither problem nor solution is well defined. So, the leader should have high focus on building a deep understanding of the ML science space, experimentation methodology, as well as a high focus on embracing external trends, especially applications of GenerativeAI and LLMs.
A large focus area for the role is to also contribute towards the science and research aspects. This role applies and extends existing scientific techniques, and invents new ones to address specific customers’ needs or business problems, at a project level. This should also lead to regular contributions to internal or external peer-reviewed publications that validate novelty
Basic Qualifications
- 3+ years of building models for business application experience- PhD, or Master's degree and 4+ years of CS, CE, ML or related field experience
- Experience in patents or publications at top-tier peer-reviewed conferences or journals
- Experience programming in Java, C++, Python or related language
- Experience in any of the following areas: algorithms and data structures, parsing, numerical optimization, data mining, parallel and distributed computing, high-performance computing
Preferred Qualifications
- Experience using Unix/Linux- Experience in professional software development
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