The explosion of AI companies has pushed demand for computing power to new extremes, and companies like CoreWeave, Together AI andย Lambda Labs have capitalized on that demand, attracting immense amounts of attention and capital for their ability to offer distributed computeย capacity.
But most companies still store data with the big three cloud providers, AWS, Google Cloud, and Microsoft Azure, whose storage systems were built to keep data close to their own compute resources, not spread across multiple clouds or regions.
โModernย AI workloads and AI infrastructure are choosing distributed computing instead of bigย cloud,โ Ovais Tariq, co-founder and CEO of Tigris Data, told TechCrunch. โWe want toย provideย the same option for storage, because without storage, compute is nothing.โย
Tigris, founded by the team that developed Uberโs storage platform, isย building a network of localized data storage centers that it claims can meet the distributedย compute needs of modern AI workloads. The startupโs AI-native storage platformย โmoves with yourย compute,ย [allows]ย dataย [to]ย automatically replicateย to where GPUs are, supports billions of small files, and provides low-latency access for training, inference, and agentic workloads,โ Tariq said.ย
To do all of that, Tigrisย recently raised a $25 million Series A round that was led by Spark Capital and saw participation from existing investors, which include Andreessen Horowitz,ย TechCrunch has exclusively learned.ย The startup is going against the incumbents, who Tariq calls โBig Cloud.โ
Tariq feels these incumbents not onlyย offerย a more expensive data storage service, butย also a less efficient one.ย AWS, Google Cloud and Microsoft Azure have historically charged egress fees (dubbed โcloud taxโ in the industry) if a customer wants to migrate to another cloud provider, or download and move their data if they want to, say, use a cheaper GPU or train models in different parts of the world simultaneously.ย Think of it like having to pay your gym extra if you want to stop going there.
According to Batuhan Taskaya, head of engineering at Fal.ai,ย one of Tigrisโ customers, thoseย costs once accounted for the majority of Falโsย cloud spending.
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Beyond egress fees,ย Tariq saysย thereโsย still the problem of latency with larger cloud providers. โEgress fees were just one symptom of a deeper problem: centralized storage thatย canโtย keep up with a decentralized, high-speed AIย ecosystem,โ he said.ย
Most of Tigrisโ 4,000+ customers are like Fal.ai: generative AI startups buildingย image, video and voice models, which tend to have large, latency-sensitive datasets.ย ย
โImagine talking to an AI agent thatโs doing local audio,โ Tariq said. โYou want the lowest latency. You want your compute to be local, close by, and you want your storage to be local, too.โย
Big cloudsย arenโtย optimizedย for AI workloads, heย added.ย Streaming massive datasets for training or running real-time inference across multiple regions can create latency bottlenecks, slowing model performance.ย But being able to access localized storage means dataย is retrieved faster, which means developers can run AI workloads reliably and more cost effectively using decentralized clouds.ย
โTigris lets us scale our workloads in any cloud by providing access to the same data filesystem from all these places without charging egress,โย Falโs Taskayaย said.
There are other reasons why companies want to have data closer to their distributed cloud options. For example, in highly regulated fields like finance and healthcare, one large roadblock to adopting AI tools is that enterprises need to ensure data security.
Another motivation, says Tariq, is that companies increasingly want to own their data, pointing toย how Salesforceย earlier this year blocked its AI rivals from using Slack data.ย โCompanies are becomingย more and moreย aware of how important the data is, howย itโsย fuelingย theย LLMs, howย itโsย fueling the AI,โ Tariq said. โThey want to be more in control. Theyย donโtย want someone else to be in control of it.โย
With the fresh funds, Tigris intends to continue building its data storage centers toย supportย increasing demand โ Tariq says the startup has grown 8x every year since its founding inย November 2021. Tigrisย already has threeย data centersย in Virginia, Chicago and San Jose,ย and wants to continue expanding in the U.S. as well as in Europe and Asia, specifically in London, Frankfurt and Singapore.ย ย


