Amazon.com Services LLC
Data Science, Science, transportation and logistics
DataScientistII
Neural analysis suggests this role is
optimal for Mid candidates.
“Data Scientist II at Amazon.com Services LLC. Skills: Machine learning, Optimization, Forecasting, MLOps. Design ML solutions. Design optimization solutions”
What You'll Achieve.
Shape planning decisions; Drive planning decisions; Measurable model outcomes
Industry & Context.
Problem framing; Model validation; Bias identification; Leakage identification
What They're Looking For.
Must Have
Master's degree in STEM, 2+ years SQL, 2+ years Python, 2+ years statistical software, 2+ years ML modeling, 2+ years data analysis tools, Experience with AWS services, Proficiency in statistical modeling, Proficiency in machine learning, Demonstrated ability to communicate technical results
Nice to Have
3+ years SQL, 3+ years Python, 3+ years statistical software, 3+ years ML modeling, 3+ years data analysis tools, Cloud platform certs
What You'll Do.
Design optimization solutions
Build optimization solutions
Ship optimization solutions
Drive end-to-end delivery
Develop modeling patterns
Develop analytical frameworks
Build model validation
Build model monitoring
Identify leakage sources
Eliminate leakage sources
Identify bias sources
Eliminate bias sources
Identify silent sources
Eliminate silent sources
Define model performance metrics
Own model performance metrics
Partner with Data Engineering
Partner with Software Development
Present recommendations
How You'll Work.
Team & Collaboration
Business partners; Engineering; Product; Stakeholders; Data Engineering; Software Development
Communication Scope
Technical results; Findings; Tradeoffs; Recommendations
Process & Methodology
End-to-end delivery
Full Job Description
The NASC & TOM Science team owns Operations Research, Machine Learning, and AI projects across the North America Sort Center (NASC) and Transportation Operations Management (TOM) planning and operations organizations. We turn complex network, labor, and capacity problems into deployed models that drive multi-million-dollar planning decisions every day. As a Data Scientist II, you will own the end-to-end Machine learning Operation cycle: Design, build, and ship machine learning and/or optimization models that directly shape Amazon's middle miles planning decisions. You will own end-to-end delivery — from problem framing with business partners, through modeling and validation, to deployment in internal model hosting platform and integration with downstream planning tools. You will work on problems such as: - Long- and short-horizon forecasting - Network and capacity optimization - GenAI / agentic systems - Defect prevention and adaptive planning You will partner closely with Engineering, Product, Engineering, and stakeholders to translate ambiguous operational pain points into measurable model outcomes. Key job responsibilities - Design and implement complex ML and optimization solutions (forecasting, MIP/LP, simulation, Deep learning / foundation model); - Drive end-to-end delivery of scalable models — from data exploration and feature engineering through training, evaluation, deployment, and post-launch monitoring; - Develop new modeling patterns and analytical frameworks for forecasting (multivariate, hierarchical, causal-DAG, model-chaining) and optimization; - Build robust model validation, backtesting, and monitoring pipelines; identify and eliminate sources of leakage, bias, and silent failure; - Define and own model performance metrics (e.g., WAPE) tied to business outcomes; - Partner with Data Engineering and Software Development to productionize models and define I/O contracts, packaging, and model CI/CD; - Excellent communication to present findings, tradeo
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