JetBrains AI Pro
Build a narrow IDE assistant for code explanation, tests, and reviewed patches
A consolation build is possible, but the paid product's decisive value sits outside a solo rebuild. For JetBrains AI Pro, build a narrow IDE assistant for code explanation, tests, and reviewed patches. The hard boundary is deep jetbrains ide integration, proprietary models, context, and enterprise tooling, plus frontier models, context infrastructure, and execution safety.
Build verification: not recorded. How we judge buildability
What you give up
- deep JetBrains IDE integration, proprietary models, context, and enterprise tooling
- frontier proprietary model
- large-scale code retrieval
- cloud sandbox fleet
- enterprise policy and support
Why people still pay
People still pay for JetBrains AI Pro because the UI can be copied, but high-quality code models, context ranking, safe execution, and constant evaluation are the product. The recurring cost buys model changes, indexing, prompt injection, tool permissions, sandboxing, evaluation, telemetry choices, and IDE compatibility, not just the visible interface.
Your build guide
The stack, security requirements, and agent rules for a focused replacement.
Before you start
- VS Code
- OpenAI or Anthropic API key
- Git repository
- local command sandbox
Use these project rules and optional skill references alongside the prompt. Review each skill before adding it to your agent; the AGENTS.md export includes the same guidance.
Project rule, data: Model selected repositories or projects, operations, results, revisions, and run logs; keep stable source IDs and timestamps.
Project rule, behavior: For AI coding agents and developer workspaces, read one selected workspace and define which files may be indexed or edited.
Project rule, recovery: Rejecting a suggestion must leave the buffer unchanged; accepting it must be reversible with the editor undo stack.
Implementation plan
Phase 1, architecture and data
Use TypeScript, Node.js 22, a VS Code extension, SQLite, and one user-supplied model API. Model selected repositories or projects, operations, results, revisions, and run logs; keep stable source IDs and timestamps.
Phase 2, implement
For AI coding agents and developer workspaces, read one selected workspace and define which files may be indexed or edited.
Phase 3, implement
Offer an inspectable suggestion or edit preview before modifying the editor buffer.
Phase 4, review and output
Apply or reject the change and show its source context and diff.
Phase 5, recovery and acceptance
Verify this invariant with a saved fixture: Rejecting a suggestion must leave the buffer unchanged; accepting it must be reversible with the editor undo stack. State the practical limit: deep JetBrains IDE integration, proprietary models, context, and enterprise tooling.
Build me a focused AI coding agents and developer workspaces workflow for the personal core of JetBrains AI Pro. Requirements: - Use TypeScript, Node.js 22, a VS Code extension, SQLite, and one user-supplied model API. Model selected repositories or projects, operations, results, revisions, and run logs; keep stable source IDs and timestamps. - Paid product context: Build a narrow IDE assistant for code explanation, tests, and reviewed patches. Build only this DIY scope: Provide a bounded coding assistant that indexes the current repository, explains code, generates tests, proposes reviewed patches, runs approved commands, and preserves an auditable session log. - For AI coding agents and developer workspaces, read one selected workspace and define which files may be indexed or edited. - Offer an inspectable suggestion or edit preview before modifying the editor buffer. - Apply or reject the change and show its source context and diff. - Use a browser popup or toolbar action with a saved-items view. Required input or access: VS Code; OpenAI or Anthropic API key. Keep credentials in .env. - Recovery: Rejecting a suggestion must leave the buffer unchanged; accepting it must be reversible with the editor undo stack. - Acceptance: with one labelled sample, show the input, saved intermediate state, and exported result; verify this invariant: Rejecting a suggestion must leave the buffer unchanged; accepting it must be reversible with the editor undo stack. - Out of scope: deep JetBrains IDE integration, proprietary models, context, and enterprise tooling; frontier proprietary model. Keep this a personal, inspectable workflow. - Include a README with setup, a sample input, required keys or permissions, data location, and the supported scope.
$ open in your agent (prompt prefilled, you press enter), copy the prompt or copy AGENTS.md · generated from this app's build plan
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JetBrains AI Pro pricing
| plan | monthly | annual (per mo) | what you get |
|---|---|---|---|
| ai free - individual | $0/user | $0/user | 3 AI credits every 30 days; no top-up purchases. |
| ai pro - individual | $10/user | $8.33/user | 10 AI credits every 30 days.Annual price is $100/year. |
| ai ultimate - individual | $30/user | $25/user | 35 AI credits every 30 days.Annual price is $300/year. |
| ai free - organization | $0/user | $0/user | 3 AI credits/user every 30 days. |
| ai pro - organization | $20/user | — | 20 AI credits/user every 30 days.An exact public annual organization price was not exposed. |
| ai ultimate - organization | $60/user | — | 70 AI credits/user every 30 days.An exact public annual organization price was not exposed. |
| ai enterprise | $60/user | — | Quota is at least comparable to AI Ultimate; exact numeric allowance can be customized and is not publicly stated.Enterprise deployment and controls; contact sales for contract terms. |
free tier3 AI credits every 30 days; no top-ups on the free plan
billingindividual plans offer monthly and annual billing; organization annual prices are not publicly exposed
hidden costsCredits reset every 30 days and do not roll over; paid top-ups expire after 12 months. Trial grants of 10 individual or 20 organization credits are temporary, not a permanent free allowance.
pricing sources checked 2026-08-14 · pricing source ↗
Questions about JetBrains AI Pro
Can you build your own JetBrains AI Pro with AI?
A full replacement is not the recommended project. A consolation build is possible, but the paid product's decisive value sits outside a solo rebuild. For JetBrains AI Pro, build a narrow IDE assistant for code explanation, tests, and reviewed patches. The hard boundary is deep jetbrains ide integration, proprietary models, context, and enterprise tooling, plus frontier models, context infrastructure, and execution safety.
What does the JetBrains AI Pro build prompt cover?
The prompt starts with this scope: Provide a bounded coding assistant that indexes the current repository, explains code, generates tests, proposes reviewed patches, runs approved commands, and preserves an auditable session log. Full-product capabilities excluded from the comparison include: deep JetBrains IDE integration, proprietary models, context, and enterprise tooling; frontier proprietary model; large-scale code retrieval. Follow the implementation plan and its prerequisites before expanding the build.
How do I use the prompt, AGENTS.md and agent skills?
Start with the JetBrains AI Pro prerequisites and stack, then copy the prompt into your coding agent. Save the project rules as AGENTS.md in the project root. Linked skills are optional packages or source instructions for specific tasks; review their current contents and install only those matching the chosen stack. A skill does not supply API credentials or verify the finished app.
How long will this JetBrains AI Pro project take?
The catalogue estimate is closest consolation build: one sitting for the limited scope. Setup, integration approvals, debugging, deployment and ongoing maintenance can add time. This is an estimate, not a delivery guarantee.
What would I give up by replacing JetBrains AI Pro?
deep JetBrains IDE integration, proprietary models, context, and enterprise tooling; frontier proprietary model; large-scale code retrieval; cloud sandbox fleet; enterprise policy and support. People still pay for JetBrains AI Pro because the UI can be copied, but high-quality code models, context ranking, safe execution, and constant evaluation are the product. The recurring cost buys model changes, indexing, prompt injection, tool permissions, sandboxing, evaluation, telemetry choices, and IDE compatibility, not just the visible interface.
What price is this guide comparing against?
The recorded AI Pro plan is $10/mo (monthly), checked 2026-07-31. Check the linked pricing source before buying. Building your own also has hosting, API and maintenance costs; the recorded amount is not a guaranteed saving.
What can I use instead of building JetBrains AI Pro?
Tabby: Self-hosted completions and chat inside JetBrains; your GPU becomes the subscription. Kilo Code: A maintained JetBrains agent for explanation, edits and tests; bring a model. Check each option's license, hosting needs and feature limits.