getimg.ai

Generation, editing, model training, and image workflow APIs

NOT REALLY · consider alternatives
price variesestimated build time not a true replacement; consolation build in one to two daysreplaced by 0 people

Do not mistake the interface for the product. getimg.ai's durable value is proprietary model, inference, which a solo one-shot build cannot reproduce responsibly. The prompt therefore builds only the closest honest personal consolation tool.

Build verification: not recorded. How we judge buildability

What you give up

  • safety, moderation, and mobile distribution
  • high-fidelity color, format, and export handling
  • the vendor's proprietary model quality
  • licensed training data and style tuning
  • fast elastic inference

Why people still pay

getimg.ai: The interface is replaceable. The subscription buys the model, aesthetic tuning, inference fleet, safety work, and rapid improvement.

Your build guide

The stack, security requirements, and agent rules for a focused replacement.

Before you start

  • GPU-capable machine or user-provided inference API
  • Python 3.12
  • model weights obtained under their own licence
  • Explicit README warning that this is a consolation build, not a production replacement
01
Use exactly this stack: Python 3.12 + FastAPI + ComfyUI API + React.
02
Model prompts, model settings, generation jobs, source assets, and exported images; keep stable source IDs and timestamps.
03
Interface for this AI image generation workflow: a local web page with input, progress, review, and export views.
engineering roadmap

Implementation plan

1

Phase 1, architecture and data

Use exactly this stack: Python 3.12 + FastAPI + ComfyUI API + React. Model prompts, model settings, generation jobs, source assets, and exported images; keep stable source IDs and timestamps.

2

Phase 2, implement

For AI image generation, accept a prompt, selected model, seed, and output dimensions; validate the model path or declared provider credential.

3

Phase 3, implement

Run one generation job and persist model parameters, status, and the produced file path.

4

Phase 4, review and output

Preview the image, allow a prompt revision, and export the image with a JSON sidecar recording generation settings.

5

Phase 5, recovery and acceptance

Verify this invariant with a saved fixture: A failed or cancelled model job retains its prompt and source assets; an exported image must reopen at the recorded dimensions. State the practical limit: safety, moderation, and mobile distribution.

the pro prompt
Build me a focused AI image generation workflow for the personal core of getimg.ai. Requirements:

- Use exactly this stack: Python 3.12 + FastAPI + ComfyUI API + React. Model prompts, model settings, generation jobs, source assets, and exported images; keep stable source IDs and timestamps.
- Paid product context: Generation, editing, model training, and image workflow APIs. Build only this DIY scope: Build the closest honest personal AI image generation console around a locally available image model, with prompt history and file export.
- For AI image generation, accept a prompt, selected model, seed, and output dimensions; validate the model path or declared provider credential.
- Run one generation job and persist model parameters, status, and the produced file path.
- Preview the image, allow a prompt revision, and export the image with a JSON sidecar recording generation settings.
- Use a local web page with input, progress, review, and export views. Required input or access: GPU-capable machine or user-provided inference API; model weights obtained under their own licence.
- Acceptance: with one labelled sample, show the input, saved intermediate state, and exported result; verify this invariant: A failed or cancelled model job retains its prompt and source assets; an exported image must reopen at the recorded dimensions.
- Out of scope: safety, moderation, and mobile distribution; high-fidelity color, format, and export handling. 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

prior art · use these instead of building, if you'd ratherComfyUINode-based open-source generative image workflow engine.↗Stable Diffusion WebUIWidely used local Stable Diffusion interface and extension ecosystem.↗
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getimg.ai pricing

planmonthlyannual (per mo)what you get
entry$10/user$8/user3,000 credits/month; about 60 Auto-mode images or 5 Auto-mode videos; 2 concurrent generationsAnnual price is $96 paid upfront. Personal use only.
core$30/user$25/user15,000 credits/month per seat; about 300 Auto-mode images or 25 Auto-mode videos; 4 concurrent generations; up to 2 teamsAnnual price is $300 per seat paid upfront.
plus$65/user$55/user35,000 credits/month per seat; about 700 Auto-mode images or 58 Auto-mode videos; 8 concurrent generations; up to 5 teamsAnnual price is $660 per seat paid upfront; credit top-ups available.
ultra$175/user$150/user100,000 credits/month per seat; about 2,000 Auto-mode images or 166 Auto-mode videos; 10 concurrent generations; up to 10 teamsAnnual price is $1,800 per seat paid upfront; credit top-ups available.

free tierno free tier

billingmonthly + annual; annual prices are $96/$300/$660/$1,800 paid upfront

hidden costsSubscription credits do not roll over; API credits are separate; top-ups are limited to Plus and Ultra and become available when the balance falls below 10%; Core, Plus, and Ultra pricing is per seat.

pricing sources checked 2026-08-14 · pricing source ↗

Questions about getimg.ai

Can you build your own getimg.ai with AI?

A full replacement is not the recommended project. Do not mistake the interface for the product. getimg.ai's durable value is proprietary model, inference, which a solo one-shot build cannot reproduce responsibly. The prompt therefore builds only the closest honest personal consolation tool.

What does the getimg.ai build prompt cover?

The prompt starts with this scope: Build the closest honest personal AI image generation console around a locally available image model, with prompt history and file export. Full-product capabilities excluded from the comparison include: safety, moderation, and mobile distribution; high-fidelity color, format, and export handling; the vendor's proprietary model quality. 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 getimg.ai 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 getimg.ai project take?

The catalogue estimate is not a true replacement; consolation build in one to two days 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 getimg.ai?

safety, moderation, and mobile distribution; high-fidelity color, format, and export handling; the vendor's proprietary model quality; licensed training data and style tuning; fast elastic inference. getimg.ai: The interface is replaceable. The subscription buys the model, aesthetic tuning, inference fleet, safety work, and rapid improvement.

What can I use instead of building getimg.ai?

The prior-art section lists ComfyUI, Stable Diffusion WebUI as starting points. Review their current scope, license and maintenance before adopting one.

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