Pebblely
Generate product-photo backgrounds from uploaded cutouts and reusable prompts
The core loop is buildable, but a dependable replacement becomes a real weekend or multi-day project. For Pebblely, generate product-photo backgrounds from uploaded cutouts and reusable prompts. The hard boundary is specialized model tuning, fast cloud generation, and commerce workflow, plus frontier models, compute, and data.
Build verification: not recorded. How we judge buildability
What you give up
- specialized model tuning, fast cloud generation, and commerce workflow
- frontier proprietary models
- hosted GPU capacity
- licensed training data
- moderation and fast global delivery
Why people still pay
People still pay for Pebblely because the product value is the model and compute fleet, not the prompt box around it. The recurring cost buys GPU procurement, model licensing, safety filters, queueing, storage, and rapid model replacement, not just the visible interface.
Your build guide
The stack, security requirements, and agent rules for a focused replacement.
Before you start
- Runtime and tools: Python, FastAPI, SQLite, FFmpeg/ffprobe and a React review interface.
- Before starting: Installed FFmpeg/ffprobe, writable media storage and a short recording whose use is authorized.
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 — domain: Store Cutout, Mask, ScenePreset, GenerationAttempt and Variant; preserve product-source identity and record model settings/seed when the backend exposes them.
Project rule — scope and recovery: Model output may alter product geometry or text. Require human review and license checks; background generation is not automatic truthful photography or guaranteed commercial clearance.
Project rule — acceptance: Generate three scenes for a transparent bottle; review edge artifacts and branding changes, approve one and retain the original mask for correction.
Project rule — delivery: document real setup commands and permissions; do not claim a build, accuracy level, performance result or security certification that has not been demonstrated.
Recommended skill: modern-python — structure the Python worker or explicitly optional read-only utility with pinned dependencies, typed boundaries and clear failure handling. Follow the maintainer's installation instructions and match its requirements to the chosen runtime.
Recommended skill: vercel-react-best-practices — keep the proposed React work/review views responsive and avoid unnecessary rendering or data-fetch waterfalls. Follow the maintainer's installation instructions and match its requirements to the chosen runtime.
Implementation plan
Phase 1
Pin the working slice and create its example input: Place a product cutout into a chosen scene template, generate a background with one model workflow and compare a small batch before export. Confirm setup: Installed FFmpeg/ffprobe, writable media storage and a short recording whose use is authorized.
Phase 2
Implement persistence and write-time invariants before decorating the UI: Store Cutout, Mask, ScenePreset, GenerationAttempt and Variant; preserve product-source identity and record model settings/seed when the backend exposes them.
Phase 3
Connect the working view to real saved state. Keep source files immutable and store edit decisions separately. Run media tools with argument arrays, bounded file size/runtime and unique job directories; only rename a completed export into its final location.
Phase 4
Expose the app-specific limits and recovery path in context: Model output may alter product geometry or text. Require human review and license checks; background generation is not automatic truthful photography or guaranteed commercial clearance.
Phase 5
Walk through this concrete acceptance case and preserve its exported evidence: Generate three scenes for a transparent bottle; review edge artifacts and branding changes, approve one and retain the original mask for correction. Finish the README and backup/restore instructions; report unfinished capabilities explicitly.
Build the following focused alternative to Pebblely. This is a deliberately limited personal or small-team substitute, not parity with the paid service. WORKING SLICE Place a product cutout into a chosen scene template, generate a background with one model workflow and compare a small batch before export. SETUP AND ARCHITECTURE Use Python, FastAPI, SQLite, FFmpeg/ffprobe and a React review interface. Prerequisites: Installed FFmpeg/ffprobe, writable media storage and a short recording whose use is authorized. Before integrating anything, record actual versions and permissions, plus model files or provider limits only where used, in the README; make unavailable dependencies visible rather than simulating success. DOMAIN MODEL AND INVARIANTS Store Cutout, Mask, ScenePreset, GenerationAttempt and Variant; preserve product-source identity and record model settings/seed when the backend exposes them. IMPLEMENTATION CONTRACT Keep source files immutable and store edit decisions separately. Run media tools with argument arrays, bounded file size/runtime and unique job directories; only rename a completed export into its final location. Provide an input/setup view, the main work view, and a review/export view appropriate to this workflow. Preserve the last saved state if a job or save fails. Include empty, loading, permission-denied, partial and retryable-error states. Log identifiers and error categories without secret values or unnecessary private content. APP-SPECIFIC BOUNDARY AND RECOVERY Model output may alter product geometry or text. Require human review and license checks; background generation is not automatic truthful photography or guaranteed commercial clearance. ACCEPTANCE SCENARIO Generate three scenes for a transparent bottle; review edge artifacts and branding changes, approve one and retain the original mask for correction. Also reopen the app after an interrupted operation, confirm the saved record/export remains inspectable, and document the recovery action. These are implementation acceptance requirements, not a claim that this guide has been tested. DELIVERY Deliver a runnable repository with migrations or project-format versioning, a non-sensitive example, environment/permission setup, the exact manual acceptance steps, and a backup/export-and-restore walkthrough. Implement the working slice before optional integrations; list any deferred paid-product capabilities honestly. Do not add capabilities outside the working slice just to resemble the original product. PROJECT RULES FOR AGENTS.md Keep the domain invariants above executable at the write boundary. Propose scope changes before adding providers or permissions. Never fabricate source evidence, publish results, identity matches or successful delivery. Preserve user originals and require an explicit confirmation for destructive changes or external publication.
$ open in your agent (prompt prefilled, you press enter), copy the prompt or copy or download AGENTS.md · generated from this app's build plan
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Alternatives to building your own
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Pebblely pricing
| plan | monthly | annual (per mo) | what you get |
|---|---|---|---|
| lite | $9 | — | 30 generated images/month and 40+ themes/custom prompts. |
| basic | $19 | — | 200 generated images/month and bulk generation. |
| pro | $39 | — | 500 generated images/month and bulk generation. |
free tierno free tier; a trial may be offered, but there is no permanent free allowance on the pricing page
billingmonthly + annual; yearly is advertised as more than 2 months free, but exact annual-effective USD amounts were not exposed
hidden costsSubscriptions auto-renew. The official page does not state that unused monthly image allowances roll over.
pricing sources checked 2026-08-14 · pricing source ↗
Questions about Pebblely
Can you build your own Pebblely with AI?
Partly. The core loop is buildable, but a dependable replacement becomes a real weekend or multi-day project. For Pebblely, generate product-photo backgrounds from uploaded cutouts and reusable prompts. The hard boundary is specialized model tuning, fast cloud generation, and commerce workflow, plus frontier models, compute, and data.
What does the Pebblely build prompt cover?
The prompt starts with this scope: Place a product cutout into a chosen scene template, generate a background with one model workflow and compare a small batch before export. Full-product capabilities excluded from the comparison include: specialized model tuning, fast cloud generation, and commerce workflow; frontier proprietary models; hosted GPU capacity. 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 Pebblely 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 Pebblely 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 Pebblely?
specialized model tuning, fast cloud generation, and commerce workflow; frontier proprietary models; hosted GPU capacity; licensed training data; moderation and fast global delivery. People still pay for Pebblely because the product value is the model and compute fleet, not the prompt box around it. The recurring cost buys GPU procurement, model licensing, safety filters, queueing, storage, and rapid model replacement, not just the visible interface.
What price is this guide comparing against?
The recorded Basic plan is $19/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 Pebblely?
Krita AI Diffusion: Mask the cutout and generate reusable product backgrounds in layers; slower, but not credit-shaped. NodeTool: Remove the background, keep the product, generate the scene and save the workflow for the next SKU. Check each option's license, hosting needs and feature limits.