DAT is an award-winning employer of choice and a next-generation SaaS technology company that has been at the leading edge of innovation in transportation supply chain logistics for 45 years. We continue to transform the industry year over year, by deploying a suite of software solutions to millions of customers every day - customers who depend on DAT for the most relevant data and most accurate insights to help them make smarter business decisions and run their companies more profitably. We operate the largest marketplace of its kind in North America, with 400 million freights posted in 2022, and a database of $150 billion of annual global shipment market transaction data. Our headquarters are in Denver, CO, and Beaverton, OR, with additional offices in Seattle, WA; Springfield, MO; and Bangalore, India. For additional information, see www.DAT.com/company About Product at DAT - Shaping the Future of Freight Analytics At DAT, we're building the go-to destination for freight pricing and insights. As the freight industry undergoes major shifts—driven by AI, autonomous vehicles, and political changes—we help our customers execute smarter, faster decisions. We follow leading product practices inspired by the Silicon Valley Product Group (SVPG), giving you the structure and support to drive meaningful outcomes. If you’re passionate about building great products and ready to make a difference in the freight industry, we’d love to talk. The Opportunity Convoy operates one of the largest freight marketplaces in the world, in an $800B+ industry that is rapidly transitioning from manual, phone-based workflows to algorithmically driven marketplaces. The platform must continuously clear large volumes of freight demand across a highly fragmented and diverse carrier base, under tight operational and timing constraints. Carrier Tech builds the systems where pricing/ auction models, bid decisions and negotiations intersect with real human behavior and imperfect information. This role owns the carrier conversion loop—from marketplace impressions through converting view to bids, and bids to matches—and is responsible for improving marketplace clearing efficiency, including match rates, time-to-match, price variance, and perceived price fairness. The work focuses on shaping how data, pricing models, and negotiation mechanisms interact with human decision-making at scale. It operates in a high-noise environment where outcomes are only partially observable and causality must be inferred over time, requiring rigorous measurement, careful sequencing of experiments, and an understanding of system-wide effects rather than isolated metrics
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Job Type
Full-time
Career Level
Senior
Education Level
No Education Listed