Beam vs Wasabi

Side-by-side comparison of AI visibility scores, market position, and capabilities

Wasabi leads in AI visibility (58 vs 39)
Beam logo

Beam

EmergingInfrastructure

Cloud Services

Serverless GPU cloud platform for AI/ML workload deployment; $1M ARR with 5-person team competing with Modal Labs and Replicate for developer-friendly AI inference infrastructure.

AI VisibilityBeta
Overall Score
D39
Category Rank
#231 of 305
AI Consensus
76%
Trend
stable
Per Platform
ChatGPT
34
Perplexity
37
Gemini
39

About

Beam is an AI-native cloud platform providing serverless infrastructure for deploying and scaling AI and machine learning workloads — enabling ML engineers and developers to run GPU-accelerated inference, fine-tuning, and batch processing jobs without managing underlying cloud infrastructure, with automated scaling from zero to peak load and back. Founded in 2021 in New York City by Luke Lombardi and Eli Mernit, Beam raised $4 million from investors including Tiger Global Management and Uncorrelated Ventures, reaching $1 million in revenue by December 2024 with a 5-person team.\n\nBeam's platform abstracts the infrastructure complexity of running AI workloads on GPU clusters — developers define their compute requirements (GPU type, memory, runtime), write Python functions, and deploy them as serverless endpoints without configuring Kubernetes clusters, managing GPU drivers, or handling auto-scaling manually. The platform handles cold-start optimization for AI models, persistent storage for model weights, and cost management through intelligent scaling. This serverless GPU model is particularly valuable for AI applications with variable traffic patterns where paying for always-on GPU capacity wastes money.\n\nIn 2025, Beam competes in the AI infrastructure market with Modal Labs, Replicate, Banana (ML inference), and cloud providers' own managed ML services (AWS SageMaker, Google Vertex AI, Azure ML) for serverless AI compute. The market for specialized AI inference infrastructure has grown rapidly as the number of teams deploying AI models to production has expanded dramatically. Beam's lean team and capital efficiency ($1M ARR with 5 people and $4M raised) position it as a high-efficiency operator in this space. The 2025 strategy focuses on expanding GPU availability across regions, adding more pre-optimized inference runtimes for popular model architectures (Llama, Stable Diffusion, Whisper), and growing developer adoption through improved tooling and documentation.

Full profile
Wasabi logo

Wasabi

ChallengerInfrastructure

Cloud Services

Cloud object storage at 80% less than AWS S3 with no egress fees; S3-compatible platform serving 50K+ customers in media, backup, and AI data storage workloads.

AI VisibilityBeta
Overall Score
C58
Category Rank
#85 of 305
AI Consensus
80%
Trend
stable
Per Platform
ChatGPT
53
Perplexity
53
Gemini
58

About

Wasabi Technologies is a cloud object storage company providing hot cloud storage at approximately 80% less cost than Amazon S3, competing on price, performance, and simplicity for customers who need to store and access large volumes of data in the cloud. Founded in 2015 in Boston, Massachusetts by David Friend and Jeff Flowers (both serial entrepreneurs who previously founded Carbonite), Wasabi has raised approximately $500 million and positioned itself as the lowest-cost alternative to AWS S3, Google Cloud Storage, and Azure Blob Storage for high-volume data storage needs.

Full profile

AI Visibility Head-to-Head

39
Overall Score
58
#231
Category Rank
#85
76
AI Consensus
80
stable
Trend
stable
34
ChatGPT
53
37
Perplexity
53
39
Gemini
58
43
Claude
60
33
Grok
54

Key Details

Category
Cloud Services
Cloud Services
Tier
Emerging
Challenger
Entity Type
brand
brand

Capabilities & Ecosystem

Capabilities

Shared
Cloud Services

Integrations

Only Wasabi

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