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Stord is The Consumer Experience Company, powering seamless checkout through delivery for today's leading brands. Stord is rapidly growing and is on track to double our revenue in the next 18 months. To meet and exceed this target, Stord is strategically scaling teams across the entire company, and seeking energetic experts to help us achieve our mission.
By combining comprehensive commerce-enablement technology with high-volume fulfillment services, Stord provides brands a platform to compete with retail giants. Stord manages over $10 billion of commerce annually through its fulfillment, warehousing, transportation, and operator-built software suite including OMS, Pre- and Post-Purchase, and WMS platforms. Stord is leveling the playing field for all brands to deliver the best consumer experience at scale.
With Stord, brands can increase cart conversion, improve unit economics, and drive sustained customer loyalty. Stord’s end-to-end commerce solutions combine best-in-class omnichannel fulfillment and shipping with leading technology to ensure fast shipping, reliable delivery promises, easy access to more channels, and improved margins on every order.
Hundreds of leading DTC and B2B companies like AG1, True Classic, Native, Seed Health, quip, goodr, Sundays for Dogs, and more trust Stord to deliver industry-leading consumer experiences on every order. Stord is headquartered in Atlanta with facilities across the United States, Canada, and Europe. Stord is backed by top-tier investors including Kleiner Perkins, Franklin Templeton, Founders Fund, Strike Capital, Baillie Gifford, and Salesforce Ventures.
About the Staff Data Scientist PositionConduct deep exploratory data analysis to validate assumptions and surface non-obvious insights
Build predictive models for supply chain optimization and consumer-facing applications, including delivery time estimation, demand forecasting, routing optimization, personalized product recommendations, and customer profile enrichment and segmentation
Write production-quality code that integrates cleanly with existing services and can be maintained by others
Play a leading role in defining Stord's data science and ML technology stack, tooling, and infrastructure choices
Work alongside fellow data scientists and ML ops to establish standards and best practices for model development, deployment, monitoring, and retraining
Contribute to both the data science and ML ops sides of the stack as needs arise
Document technical decisions and patterns in ways the broader team can build on
Embed with engineering teams to integrate models into production systems and ship features
Work with engineers to deploy models as microservices or API endpoints and own their performance over time
Participate in sprint planning and agile ceremonies
Review code and provide feedback on data-related implementations
Lead technical conversations with engineering and product leadership on data science strategy and investment
Translate complex modeling approaches and tradeoffs into clear, actionable recommendations for non-technical stakeholders
Identify high-leverage opportunities for data science across the platform and bring them forward with supporting analysis
Expert-level Python programming with production code experience
Strong SQL skills with Postgres and BigQuery experience
Deep understanding of statistical analysis and machine learning fundamentals
Proven experience deploying and operating models in production environments, including monitoring and retraining
Hands-on experience with ML ops practices: model versioning, pipeline orchestration, drift detection, and experimentation frameworks
Experience with cloud platforms (AWS, GCP, or Azure)
Proficiency with Git/GitHub and collaborative development workflows
Technical credibility - earns trust as the expert on hard problems through demonstrated depth, not just seniority
Communication - carries technical opinions clearly into leadership conversations and can make complex tradeoffs legible
Pragmatism - focuses on delivering working solutions and iterates; doesn't wait for perfect conditions
Collaborative - works openly with data scientists, ML engineers, and software engineers toward shared outcomes
Self-directed - identifies what needs to be done in ambiguous situations without waiting for detailed specs
Background in logistics, supply chain, or e-commerce domains
Experience building recommendation systems or customer profile modeling at scale
Experience with real-time model serving and high-availability ML systems
Experience with Elixir, TypeScript, or functional programming paradigms
Familiarity with Kubernetes, CI/CD, and DataOps tooling
Experience helping define standards or tooling choices across a data science team
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