If you have ever bought or sold anything on Amazon you have touched Amazon Marketplace. Amazons Marketplace business is one of the largest in the world. We are now in 23 countries. We are growing fast with customers in many more countries. Amazons platform is the engine that powers Amazons Marketplace businesses and Sellers rely on this platform and our support to start selling on Amazon and to grow their business. Amazon Marketplace enables millions of Sellers worldwide to list hundreds of millions of products and manage orders for inventory across dozens of different categories and languages. While working with millions of Sellers worldwide we constantly strive to improve the selection for Customers and the capabilities of our platform for Sellers.
The Seller Fulfillment Services (SFS) team is looking for a motivated and innovative Applied Scientist with strong analytical skills and practical experience to join our science team. As a key member of the SFS science team you will provide expertise that helps accelerate the business. You will build science solutions that will help us to provide our customers with the largest selection of merchants at the lowest and the most reliable delivery service regardless of the seller. You will research design and improve on the models that will impact Amazons customer directly. You will be working in a highly collaborative environment partnering with various science product management engineering operations finance business intelligence and analytics teams to develop science models to solve business problems. You will need to understand the business requirements and translate them into complex analytical outputs. You will design tests to explain performance of the models from impact on customer and cost perspective. You will create ML models to capture features impacting performance. You should be comfortable building prototypes testing and improving them given the feedback from the real time data. You should be able to present your model and findings to a various range of stakeholders.
An ideal candidate will be an expert in the areas of machine learning operations research and statistics. With expertise in applying theoretical models in an applied environment relying heavily on the latest advances in machine learning optimization stochastic modeling and engineering. The candidate will be expected to work on numerous aspects such as feature engineering modeling probabilistic modeling hyper-parameter tuning scalable inference methods and latent variable models. Challenges will involve dealing with very large data sets and requirements on throughput.
Key job responsibilities
- Design implement test deploy and maintain innovative science solutions to accelerate our business.
- Create experiments and prototype implementations of new learning algorithms and prediction techniques
- Collaborate with scientists engineers product managers and stakeholders to design and implement software solutions for science problems
- Use best practices to ensure a high standard of quality for all of the team deliverables
- Masters degree in engineering technology computer science machine learning robotics operations research statistics mathematics or equivalent quantitative field
- 3 years of building machine learning models or developing algorithms for business application experience
- 3 years of solving business problems through machine learning data mining and statistical algorithms experience
- Experience in any of the following areas: algorithms and data structures parsing numerical optimization data mining parallel and distributed computing high-performance computing
- Experience in patents or publications at top-tier peer-reviewed conferences or journals
- Experience programming in Java C Python or related language
- Experience in professional software development
- Experience implementing algorithms using toolkits and self-developed code
- PhD in engineering technology computer science machine learning robotics operations research statistics mathematics or equivalent quantitative field
- 5 years of building machine learning models or developing algorithms for business application experience
- Knowledge of architectural concepts and algorithms schedule tradeoffs and new opportunities with technical team members
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