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Posted 3 months ago

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Senior AI/ML Engineer - Inventory Forecasting & Decision Systems

PhilippinesRemoteFull-time

AI Summary

Senior AI/ML Engineer focused on building end-to-end inventory forecasting and decision systems, including data pipelines, ML models, and LLM/AI-agent workflows to support inventory planning and pricing decisions.

About this role

Role: Senior AI/ML Engineer — 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 → feature engineering → training → deployment → monitoring → 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/research).
  • 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 → 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 you’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.

As part of our recruitment process, all candidates are kindly asked to read, understand, and agree toLago’s Confidentiality and Non-Circumvention Agreement. This ensures a respectful and professional experience for everyone involved.

Skills

API IntegrationBacktestingBias CorrectionCalibrationCross-ValidationData PipelinesData ValidationDemand PlanningDistribution ShiftsEnsemble MethodsEvaluation FrameworksFeature EngineeringForecastingKNNLLM/AI-agent WorkflowsLOOProduction MetricsProduction ML SystemsPrompt EngineeringPythonSafety StockSeasonalityStale Signal HandlingStatistical ModelingTime-series ModelingTrend Decomposition

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