Full-Time

Senior Applied Scientist

Store Solutions

Afresh

Afresh

51-200 employees

AI-driven inventory optimization for grocery retailers

Compensation Overview

CA$152k - CA$205k/yr

+ Equity

Ontario, Canada

Remote

Master's, PhD

Category
AI & Machine Learning (1)
Required Skills
Python
Supply Chain Management
Forecasting
Pandas
NumPy

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Requirements
  • MS or PhD in Operations Research, Industrial Engineering, Computer Science, Electrical Engineering, or another quantitative field, or equivalent practical experience.
  • For candidates with an MS, 4+ years of industry experience; for candidates with a PhD, some industry experience preferred.
  • Experience researching and building systems that support large-scale decision making under uncertainty.
  • Prior experience or academic knowledge in areas such as inventory optimization, supply chain management, network optimization, forecasting, game theory, decision analysis, stochastic optimization, approximate dynamic programming, or related fields is a plus.
  • Excellent communication and presentation skills. You should be able to explain complex mathematical ideas to product teams in plain English and easily translate business requirements into constrained optimization problems.
  • Ability to independently deliver high quality software implementations of your solutions in the Python data stack (numpy/torch/pandas/etc). Prior experience with Python is not required.
Responsibilities
  • Model complex problems such as inventory decay, promotions, price elasticity, and inventory uncertainty, and implement solutions to multi-stage and multi-echelon inventory optimization problems.
  • Drive fundamental changes to our core system from research through production, writing rigorously tested and scalable code — we are not an analytics team.
  • Advance research and development for new product and business challenges.
  • Raise the technical bar across the Intelligence team: mentor scientists and engineers, set standards for experimental rigor, and review designs and results.
  • Push the boundaries of AI capabilities in both products and scientist workflows.
Desired Qualifications
  • understanding of ML Platform and a passion for mentorship

Afresh offers an AI-powered platform that helps grocery retailers manage fresh food inventory to reduce waste and improve margins. Retailers connect POS data and supplier feeds; Afresh analyzes sales, spoilage risk, and shelf-life to generate restock recommendations and waste-avoidance guidance. It focuses on perishable items and uses retailer data for continuous learning, unlike generic inventory tools. Its goal is to meet customer demand while cutting waste and boosting profitability in the fresh food supply chain.

Company Size

51-200

Company Stage

Series B

Total Funding

$147.8M

Headquarters

San Francisco, California

Founded

2017

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Simplify Jobs

Simplify's Take

What believers are saying

  • Afresh raised $34 million on April 21, 2026 after 70% 2025 revenue growth.
  • June 2026 wins at Balls Food Stores and Grocery Outlet broaden revenue beyond produce.
  • Afresh claims 100 million pounds of waste prevented, strengthening ROI-based sales narratives.

What critics are saying

  • RELEX and Blue Yonder bundle broader planning suites, pressuring Afresh’s specialty pricing.
  • Fresh tech wins remain retailer-by-retailer; losing Albertsons or Meijer would hit credibility fast.
  • If large grocers standardize on one platform by 2027, Afresh becomes a niche add-on.

What makes Afresh unique

  • Afresh’s 2025 Fresh Store Suite unifies fresh ordering, production, and inventory workflows.
  • Afresh expanded on March 17, 2026 to every store item, not just produce.
  • Twelve-thousand-plus departments and 40 states give Afresh a rare grocery distribution footprint.

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Benefits

Comprehensive health plans

Competitive compensation

Generous parental leave

Equity packages

401(k) matching

Flexible vacation policy

Monthly grocery stipend

Professional development program