AWS · Azure · GCP · Alibaba · Any Region

Manage Cloud with AI

Stop drowning in bill shock, idle resources, and console tabs. Describe what you want — the AI handles the rest, across every account.

Cloud bills don't break loudly — they bleed. An EC2 fleet that outgrew its workload months ago, a dev environment nobody turned off, load balancers orphaned by deleted clusters, snapshots accumulating since the quarter started, and a Savings Plan that expired last week. Whether you run a single AWS account, an Azure landing zone with a dozen subscriptions, GCP projects across regions, or all three at once — VibeComputing handles the full spectrum of cloud operations: cost and usage analysis, rightsizing, idle-resource sweeps, tagging and governance, security posture, and commitment planning. Stop exporting CSVs into spreadsheets. Just describe the problem.

The agent connects in seconds and immediately maps the landscape — accounts and organizational structure, spend by service and tag, utilization against provisioned size, security groups and exposure, and coverage against your reserved capacity. "Why is this month's bill up 38%?" "Show me everything idle and what it costs to keep." "Which instances are pegged at 3% CPU for 30 days?" "What would a 3-year commitment on this RDS family actually save?" The AI walks Cost Explorer, utilization metrics, and inventory like a FinOps engineer — correlating the spend spike with the forgotten autoscaling floor, the waste with the team that left — and proposes the fix before it touches anything.

For platform and cloud teams, VibeComputing fits existing workflows without ceremony. The zero-trust outbound-only agent model works inside locked-down environments — no IAM role changes beyond read, no credentials exposed to the internet. Read-only by default; every proposed mutation is shown as the exact CLI command or API call before it runs, and sensitive identifiers are obfuscated before they ever reach a model. Combined with LLM data obfuscation for compliance-heavy environments and BYOK for strict control over your AI provider, it's the most secure way to manage cloud with AI.

Example:

$ why is our AWS bill up 38% this month

→[OBFUSCATING] Masking account IDs and identifiers...

→ Cost Explorer: top mover = EC2 +$4,120 (was $2,980)

→ Autoscaling group prod-api: min raised 4→14 by deploy 21d ago

→ Avg CPU across fleet: 6% — floor never reverted after load test

→ Also found: 14 idle LBs ($612/mo), 23 unattached EBS vols ($188/mo)

Root cause: stale autoscaling floor. Proposed: aws autoscaling update-auto-scaling-group --min-size 4 (≈$4,100/mo saved) + sweep idle LBs/EBS (≈$800/mo). Awaiting your approval.

Why VibeComputing

Built Different

LLM Data Obfuscation

Account IDs, identifiers, and sensitive metadata tokenized before reaching any AI model — full compliance for regulated environments.

Zero-Trust Architecture

Outbound-only agents, read-only IAM by default, no credentials exposed to the internet. Works in highly restricted environments.

Any Cloud, Any Account

AWS organizations, Azure subscriptions, GCP projects, Alibaba — multi-account and multi-cloud aware, one aggregate view.

Air-Gapped Appliance

For government and defense: run the entire AI stack on-premises with zero external connectivity.

BYOK

Bring your own API keys for the LLM provider of your choice. Full control over data access and costs.

15+ Years Expertise

Born from deep Linux and cybersecurity roots. Built by engineers who've run production at scale.

This guide is part of the AI Infrastructure Management series — 20 playbooks, one estate.

Explore the full series →

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