project-75c5dfea

byMoe Tamizhan

ShopIQ (QuoteForge + GradeIQ) This one is more speculative, and the audit ranked it near the bottom ("pass for now") — but the underlying idea is genuinely clever. Both halves price physical metal off proprietary, outcome-labeled data, just at opposite ends of the same shop. GradeIQ uses a camera to price metal coming in — it grades a scrap or raw-stock load and values it against live commodity indices. QuoteForge uses AI to price parts going out — it reads a CAD/STEP drawing, extracts the features and tolerances, and drafts a quote from the shop's own historical cost data. The synergy thesis: a machine shop's single largest input cost is raw material. If you fuse an accurate, vision-priced material-in cost with an AI-generated labor-and-parts-out estimate, you produce the only truly landed quote on the market — one that reflects what the metal actually costs today, not a stale number typed from memory. And there's a data loop: the offcut and scrap generated by the jobs you quote feeds back into the material-pricing model. Strategically, this is how QuoteForge escapes its biggest problem. On its own, QuoteForge fights Paperless Parts, which has ~$45–51M in funding and a live AI product — and QuoteForge has no structural advantage. Bolting on GradeIQ's material-pricing intelligence gives it something Paperless Parts doesn't have and can't easily scrape: proprietary, physically-generated metals-pricing data. It also flips GradeIQ's problem — GradeIQ alone is hardware-gated and slow to scale, but as a data feed into a software front-end it gets software margins. Why the audit still said "pass for now," and I'd agree: the buyer overlap is the weakest of the three hybrids. A scrap yard is not a fab shop. They're adjacent in that both handle metal, but you're selling to two different customers with two different sales motions, and the "unifying data spine" is more of an investor narrative than a thing either customer asks for. Layer on GradeIQ's hardware capex and slow, conservative buyers, and you get a long time-to-revenue (~12+ months) and real execution drag. The scored verdict was blunt: it's a compelling data story but a science project until QuoteForge alone proves that SMB machine shops will actually adopt at speed. The sensible sequencing is to prove QuoteForge's adoption first, then layer GradeIQ's material intelligence in as a moat-deepener — not to try to build both sides at once.

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Home: View Landing Page
Upload: Submit CAD Drawing
Analysis: View Drawing Analysis
Quote: Generate Quote
Quote: View Cost Breakdown
Quote: Review Metal Pricing
Quote: Accept Quote
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Home design preview
Home: View Landing Page
Upload: Submit CAD Drawing
Analysis: View Drawing Analysis
Quote: Generate Quote
Quote: View Cost Breakdown
Quote: Review Metal Pricing
Quote: Accept Quote
Dashboard: Track Scrap Feedback
Dashboard: View Quote History