Amazon is seeking a passionate and talented Applied Scientist to join the AERO team within Amazon PGX (Partner Growth and Experiences). Our mission is to elevate the experience of Selling Partners and Retail users through intelligent collaborative Agentic AI solutions powered by specialized agents that deliver seamless personalized support at scale.
As part of the AERO team you will work alongside internationally recognized experts applying and advancing machine learning techniques to build Agentic AI solutions. Your work will directly impact millions of users in the form of products and services that improve their experience across Amazons selling ecosystem.
Key job responsibilities
- Apply machine learning and statistical modeling techniques to build and improve Agentic AI components for Selling Partners and Retail users.
- Collaborate with senior Applied Scientists Software Development Engineers and Product Managers to design prototype and evaluate AI/ML models that power AEROs agentic workflows.
- Gain hands-on experience with Amazons native and partnered Large Language Models (LLMs) and technologies such as AgentCore AgentMemory Strands and Model Context Protocol (MCPs).
- Conduct experiments analyze results and iterate on model performance to improve agent task completion accuracy and business impact.
About the team
You will work closely with the AERO team to apply ML and LLM-based techniques to real-world vendor management and retail challenges. This includes running experiments on agent behavior fine-tuning or prompting LLMs for specific use cases evaluating agent outputs against business KPIs and collaborating with engineers to integrate models into production agentic pipelines.
- Bachelors degree or above in Engineering Computer Science Machine Learning Statistics Physics or related fields
- Experience in solving business problems through machine learning data mining and statistical algorithms
- Experience programming in Java C Python or related language
- Strong analytical and problem-solving skills with the ability to translate business problems into ML solutions
- Experience with ML frameworks such as TensorFlow PyTorch or scikit-learn
- Experience implementing algorithms using both toolkits and self-developed code
- Experience working with or evaluating AI systems
- Masters degree in computer science machine learning engineering or related fields or experience with AWS services including S3 Redshift Sagemaker EMR Kinesis Lambda and EC2
- Knowledge of the Selling Partner or Vendor Management business domain
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