Purpose-built AI that delivers exceptionally accurate supply chain forecasts, helping companies eliminate waste and optimize how physical products are manufactured, stored, and distributed.
Omnifold is building purpose-built AI systems to optimize how physical products are manufactured, stored, and distributed throughout the world. The company precisely models the underlying mechanics of supply chain and commercial operations to deliver intelligent, self-improving forecasting algorithms specific to the complexities of each customer's business.
Founded by a team with backgrounds at MIT, Stanford, Google, Palantir, and Snowflake — including a CEO with a prior nine-figure exit to Snowflake and a CTO with deep research experience — Omnifold treats supply chain forecasting as a fundamental computer science problem rather than an application layer problem. The company trains custom AI models for each customer, leveraging advances in deep learning, reinforcement learning, and optimization.
Mission: Every bad forecast has a physical consequence — unnecessary goods manufactured, emergency air freight for misallocated products, workers with nothing to do or working frantic overtime. Omnifold's mission is to eliminate waste and accelerate growth for every company with physical products.
What makes Omnifold unique:
Backed by Lightspeed Venture Partners and Kleiner Perkins, along with industry leaders including John Thompson (ex-Chairman of Microsoft), Girish Rishi (ex-CEO of Blue Yonder), and Yannis Skoufalos (ex-Chief Supply Chain Officer of P&G).
Total raised
$28M
Last stage
Series A
Investors
Lina Lukyantseva
Stanford PhD specializing in optimization and reinforcement learning. Previously a Machine Learning Scientist at LinkedIn.
LinkedInIshaan Nerurkar
Previously founded LeapYear (acquired by Snowflake in a $100M+ transaction) and served as Global CTO of AI at Snowflake. Background includes work at MIT.
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