Sr. Applied Scientist, JCI Measurement and Optimization Science Team
at Amazon
Posted 9 hours ago
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Join the JCI Measurement and Optimization Science Team as a Sr. Applied Scientist to build scalable systems that automatically detect pricing defects, enable intelligent corrections, and measure intervention impacts. You will leverage machine learning, LLMs, and causal inference to drive data-driven pricing strategies and improve pricing quality. You’ll deploy solutions at scale through cross-functional collaboration with product, engineering, and science teams, and design large-scale experiments and executive dashboards for leadership.
This role requires an individual with exceptional machine learning, LLM, and Causal Inference expertise, strong system architecture capabilities, excellent cross-functional collaboration skills, business acumen, and an entrepreneurial spirit to drive measurable improvements in pricing quality and competitiveness.
We are looking for an experienced innovator who is a self-starter, comfortable with ambiguity, demonstrates strong attention to detail, and thrives in a fast-paced, data-driven environment.
Key job responsibilities
Key Job Responsibilities
• Build scalable defect detection systems that automatically identify pricing anomalies, competitive gaps, and quality issues across millions of products using ML and LLM models and real-time monitoring
• Deploy automated defect remediation with intelligent pricing recommendations, and validation frameworks that reduce manual intervention requirements
• Measure impact and drive strategy by establishing robust measurement frameworks, designing large-scale experiments, building attribution models, and developing executive dashboards that translate findings into actionable insights for leadership
• Lead cross-functional collaboration by partnering with product, engineering, and science teams to deploy solutions at scale while communicating complex technical concepts clearly to executive audiences
• Stay at the forefront of innovation by applying state-of-the-art techniques in ML, deep learning, LLM, and causal inference to pricing quality challenges while fostering rapid experimentation and continuous learning
Basic Qualifications
- 3+ years of building machine learning models for business application experience- PhD, or Master's degree and 6+ years of applied research experience
- Experience programming in Java, C++, Python or related language
Preferred Qualifications
- Experience with modeling tools such as R, scikit-learn, Spark MLLib, MxNet, Tensorflow, numpy, scipy etc.- Experience with large scale distributed systems such as Hadoop, Spark etc.
- Experience with neural deep learning methods and machine learning
- Knowledge of advanced causal modeling techniques, both in experimental and observational settings
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