Senior AI/ML Engineer - Inventory Forecasting & Decision Systems

lago โ€ข Serbia
Remote
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AI Summary

We seek a Senior AI/ML Engineer to develop advanced inventory forecasting and decision systems. The ideal candidate must be skilled in statistical modeling, time-series modeling, and Python. Direct business impact is required.

Key Highlights
Develop advanced inventory forecasting and decision systems
Utilize statistical modeling, time-series modeling, and Python expertise
Drive real business decisions through ML model development
Key Responsibilities
Build and improve inventory demand forecasting models using ML and statistical methods
Own ML models end-to-end: data collection โ†’ feature engineering โ†’ training โ†’ deployment โ†’ monitoring โ†’ iteration
Develop decision systems that support inventory planning, pricing, and demand decisions
Build and maintain data pipelines and API integrations for external and internal data sources
Work with messy real-world data to ensure model reliability through rigorous validation and testing
Implement LLM/AI-agent workflows to translate domain logic into automated processes
Technical Skills Required
Python Statistical modeling Time-series modeling Ensemble methods kNN Calibration Cross-validation Feature engineering API integration Data pipeline architecture LLM/AI-agent workflows Prompt engineering Evaluation frameworks
Benefits & Perks
Remote work
Growth opportunities
Innovative culture
Nice to Have
Experience in Amazon marketplace, e-commerce, or retail analytics
Familiarity with similarity-based methods (kNN, embeddings, vector search)
Experience maintaining long-lived model systems (v1 โ†’ v30+ iteration cycles)
Prior startup or founder-adjacent experience

Job Description


Role: Senior AI/ML Engineer โ€” Inventory Forecasting & Decision Systems

Hours: 9am - 6pm Eastern Time (Remote)

USD Salary: $20-$40/HR


We are seeking a highly skilled Senior AI/ML Engineer to drive the development of advanced inventory forecasting and decision systems. This is a senior, individual-contributor role with direct business impact, ideal for a self-directed engineer comfortable navigating ambiguity and building end-to-end ML solutions.


Responsibilities


  • Build and improve inventory demand forecasting models using ML and statistical methods
  • Own ML models end-to-end: data collection โ†’ feature engineering โ†’ training โ†’ deployment โ†’ monitoring โ†’ iteration.
  • Develop decision systems that support inventory planning, pricing, and demand decisions.
  • Build and maintain data pipelines and API integrations for external and internal data sources.
  • Work with messy real-world data to ensure model reliability through rigorous validation and testing.
  • Implement LLM/AI-agent workflows to translate domain logic into automated processes.
  • Operate independently in a small team, setting priorities, unblocking challenges, and communicating tradeoffs clearly.


Requirements


Must-Have Qualifications


  • 5+ years of Python experience in production ML systems (beyond notebooks/resear
  • ch).Deep experience with statistical modeling, including ensemble methods, kNN, calibration, cross-validation, and feature engineering.
  • Expertise in time-series modeling & forecasting, including seasonality, trend decomposition, safety stock, and demand planning.
  • Proven track record of shipping ML models that drive real business decisions (forecasting, pricing, demand planning).
  • Strong intuition for messy, real-world data, including bias correction, stale signal handling, error cancellation, and distribution shifts.
  • Experience with API integration and data pipeline architecture at scale.
  • Hands-on experience with LLM/AI-agent workflows, including prompt engineering and evaluation frameworks.
  • Proven ability to validate models rigorously: LOO, backtesting, production vs offline metric gaps.
  • Self-directed, comfortable in a fast-evolving, small team environment.


Nice-to-Have Qualifications


  • Experience in Amazon marketplace, e-commerce, or retail analytics.
  • Familiarity with similarity-based methods (kNN, embeddings, vector search).
  • Experience maintaining long-lived model systems (v1 โ†’ v30+ iteration cycles).
  • Prior startup or founder-adjacent experience.


Benefits


  • Remote Work: Work from anywhere - our team is global, and we value work-life balance.
  • Growth Opportunities: As a key player i youโ€™ll have the chance to shape your role and grow with us.
  • Innovative Culture: Join a team that is passionate about leveraging data to solve challenges and drive success in a rapidly evolving market.

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