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General Catalyst backs AI cloud startup Modal at $4.6b
Modal, a New York-based cloud infrastructure startup, has raised US$355 million in a series C round led by General Catalyst and Redpoint at a US$4.65 billion post-money valuation.
The startup helps developers run AI and other compute-heavy applications.
Menlo Ventures and Accel joined as new investors, while existing backers also participated, Modal CEO Erik Bernhardsson said in a social media post.
The company has grown fivefold since September and now exceeds US$300 million in annualized revenue.
Its sandbox product contributing about one-third of revenue, Bernhardsson said.
🔗 Source: Erik Bernhardsson
🧠 Food for thought
Implications, context, and why it matters.
Modal’s valuation rests on a custom multi-cloud stack
- Modal did not build on one cloud vendor alone. It wrote its core stack in Rust, which is known for speed and reliability 1.
- That stack includes a custom filesystem for near-instant container starts plus a runtime that uses memory snapshots to cut cold starts for large AI models to under three seconds 2.
- Another piece is its resource solver. The internal tool uses linear programming, a math optimization method. It moves graphics processing unit (GPU) capacity among Amazon Web Services (AWS), Google Cloud Platform (GCP), and Oracle in real time based on price plus availability 3.
- Its sandbox product gives customers such as Quora’s Poe, Quora’s AI chatbot platform, secure isolated environments for untrusted code 2.
Multi-cloud software is becoming a new pressure point for hyperscalers
- Modal’s rise suggests a new software layer. It can treat hyperscale cloud providers as interchangeable suppliers for some workloads, which can loosen ties to any single cloud ecosystem 2.
- By sending workloads across clouds plus regions, Modal can keep value that might otherwise go to AWS, Google, or Oracle through compute usage and related services 4.
- This approach appears in Ramp, a corporate spend management and finance software company. Per Contrary Research’s summary, it saved about 79% against other major large language model (LLM) providers on a workflow with receipt processing-related steps 1.
- Across the industry, this could push hyperscale cloud providers to compete harder on compute prices. It also could make multi-cloud cost control a more common goal for businesses 2.
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