
Applied Scientist I, Buyer Risk Prevention (BRP)
at Amazon
Posted 18 hours ago
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- Compensation
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Applied Scientist I on the Amazon Buyer Risk Prevention (BRP) ML team to develop scalable machine learning solutions that protect customers and enable a trusted eCommerce experience. You will work with large-scale datasets to build, validate, and deploy risk management models addressing fraud and risk challenges. You will translate business problems into data-driven solutions, collaborate with software engineers to implement models in real-time production systems, and experiment with emerging technologies including GenAI/LLMs to enhance automation. The role also involves monitoring model performance, building automated data pipelines, and collaborating with operations and business teams to improve risk policies and operational efficiency.
Are you excited about working with large-scale datasets and developing models that solve real-world fraud and risk challenges?
If so, the Amazon Buyer Risk Prevention (BRP) Machine Learning team may be the right fit for you. We are seeking an Applied Scientist to help develop scalable machine learning solutions that safeguard millions of transactions every day.
In this role, you will partner with senior scientists and engineers to translate business problems into data-driven solutions, build and evaluate models, and contribute to next-generation risk prevention systems, including applications of Generative AI and LLM technologies.
Key job responsibilities
Apply machine learning and statistical techniques to build and improve risk management models
Analyze large-scale historical data to identify risk patterns and emerging trends
Develop, validate, and deploy innovative models under the guidance of senior scientists
Experiment with emerging technologies, including GenAI/LLMs, to enhance automation and risk evaluation
Collaborate closely with software engineers to implement models in real-time production systems
Partner with operations and business teams to improve risk policies and operational efficiency
Build scalable, automated pipelines for data analysis, model training, and validation
Monitor model performance and provide clear reporting on key risk and business metrics
Research and prototype new modeling approaches to improve system performance
Basic Qualifications
- Experience programming in Java, C++, Python or related language- Experience with SQL and an RDBMS (e.g., Oracle) or Data Warehouse
- Master's degree in Engineering, Computer Science, Machine Learning, Operations Research, Statistics, or related fields
- Experience building machine learning models or developing algorithms for business application
Preferred Qualifications
- Experience implementing algorithms using both toolkits and self-developed code- Have publications at top-tier peer-reviewed conferences or journals
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