Sr. Applied Researcher — AIML
Job Summary
At eBay were more than a global ecommerce leader were changing the way the world shops and sells. Our platform empowers millions of buyers and sellers in more than 190 markets around the world. Were committed to pushing boundaries and leaving our mark as we reinvent the future of ecommerce for enthusiasts.
Our customers are our compass authenticity thrives bold ideas are welcome and everyone can bring their unique selves to work every day. Were in this together sustaining the future of our customers our company and our planet.
Join a team of passionate thinkers innovators and dreamers and help us connect people and build communities to create economic opportunity for all.
Looking for a company that inspires passion courage and creativity where you can be on the team shaping the future of global commerce Want to shape how millions of people buy sell connect and share around the world If youre interested in joining a purpose driven community that is dedicated to crafting an ambitious and inclusive work environment join eBay a company you can be proud to be with.
The AI/ML team within eBays Selling organization builds machine learning and generative AI systems that help sellers make confident pricing and listing decisions. We combine rigorous econometric methodology with production ML engineering moving research from theoretical grounding through reproducible prototypes to seller-facing features used across eBays global marketplace.
As an Applied Researcher you will design and advance our research agenda across machine learning and generative AI contributing to both our price guidance modeling and the teams expanding selling-agent platform. You will work with stakeholders across Product Engineering and Data to translate research findings into systems that reach sellers worldwide. Performance reliability and measurable business impact are central to this work as it touches the pricing and selling decisions at the core of eBays marketplace.
Problems we are working on:
- Designing price guidance systems that separate confounded marketplace correlations from true seller-controllable price elasticity.
- Building LLM-based selling agent components that route seller queries invoke specialized ML tools and synthesize actionable listing advice.
- Developing evaluation frameworks for generative AI systems: synthetic dataset construction LLM-as-judge pipelines and human adjudication protocols.
- Applying knowledge distillation to replace high-latency LLM classifiers with lightweight cost-efficient encoder models that maintain production accuracy.
- Researching feedback loop dynamics between AI price recommendations and marketplace outcomes.
Qualifications
- Expertise in causal inference for ML: double machine learning heterogeneous treatment effect estimation observational study design confounder handling.
- Hands-on experience with gradient boosting (LightGBM XGBoost CatBoost) including custom loss function design.
- Proficiency in advanced prompt engineering techniques: Chain-of-Thought ReAct few-shot calibration structured output contracts and context caching.
- Experience designing and deploying LLM-based classification or generation systems in production environments.
- Ability to build LLM evaluation frameworks: synthetic dataset construction inter-annotator agreement measurement and LLM-as-judge methodology.
- Demonstrated experience with agentic system patterns: tool-calling architectures intent routing multi-step reasoning and safety/guardrail layers.
- Production-level experience taking ML research from prototype to deployed system with accountability for KPIs and measurable business impact.
- Proficiency in Python with a modern data engineering stack (polars/pandas pyarrow scipy/statsmodels); familiarity with LangChain or an equivalent LLM orchestration framework.
- PhD in Computer Science Machine Learning Artificial Intelligence Statistics or a related quantitative field plus 3 years of industry research experience; or MS in a related field with 5 years of applied ML research experience demonstrating equivalent depth.
Bonus Points
- Experience with survival analysis or competing-risks models in marketplace or platform settings.
- Familiarity with knowledge distillation: training lightweight encoder models (BERT-class or smaller) from LLM teacher signal.
- Hands-on work with synthetic data generation pipelines for NLP: stratified sampling proportional quota design and silver-to-gold adjudication.
- Experience with marketplace or e-commerce economics: price elasticity estimation two-sided market dynamics behavioral pricing.
- Track record of applying academic ML/NLP literature to production systems.
The character & qualities that will help you succeed:
- Youre energized by the gap between research prototype and production system you close it.
- You read papers and ship code; you know which problems need first principles and which need engineering judgment.
- You earn cross-team credibility by being right frequently and communicating it clearly.
- You mentor junior researchers not because its required but because their velocity is your velocity.
Additional Details
This job posting relates to an existing vacancy within eBay.
eBay is an equal opportunity employer. All qualified applicants will receive consideration for employment without regard to race color religion national origin sex sexual orientation gender identity and disability or other legally protected you have a need that requires accommodation please contact us at. We will make every effort to respond to your request for accommodation as soon as possible. View our accessibility statement to learn more about eBays commitment to ensuring digital accessibility.
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Required Experience:
Senior IC
About Company
Founded in 1995 in San Jose, Calif., eBay (NASDAQ: EBAY) is where the world goes to shop, sell and give. Whether you’re buying new or used, common or luxurious, trendy or rare – if it exists in the world, it’s probably for sale on eBay. Our great value and unique selection help every ... View more