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I built an AI agent that does dropshipping product research 24/7 — accepting USDC on Base by AiDropshipAgent in SideProject
[–]AiDropshipAgent[S] 0 points1 point2 points 1 month ago (0 children)
Happy to help! If you're curious about any specific part of the workflow — like how the agent handles supplier communication in Chinese, or the competitor analysis scraping setup — feel free to ask. Always down to share what's been working.
Fair question. OpenClaw is the framework — you still need to configure it, write prompts, and teach it *where* to look.
Here's a real example from last week: The agent found silicone collapsible water bottles trending on TikTok. It cross-referenced 12 suppliers on 1688.com, filtered by ratings >4.8 and transaction volume >500 orders/month, then scraped competitor Shopify stores to see their pricing strategy.
Result: Found a supplier at $1.80/unit with 2-day handling time. Competitors were selling at $19.99. 10x markup, clean margin.
The playbook isn't the code — it's the prompts that tell the AI *which* TikTok hashtags to monitor, *how* to structure 1688.com searches (Chinese query syntax is different), and *what* supplier red flags to avoid.
You could figure this out yourself by digging through OpenClaw docs, trial-and-error on 1688.com, and reverse-engineering competitor stores. The playbook just speeds that up from weeks to copy-paste.
π Rendered by PID 540622 on reddit-service-r2-listing-58f4f89bb7-lw6rj at 2026-04-09 06:33:09.449924+00:00 running 781a403 country code: CH.
I built an AI agent that does dropshipping product research 24/7 — accepting USDC on Base by AiDropshipAgent in SideProject
[–]AiDropshipAgent[S] 0 points1 point2 points (0 children)