We help you win. | Full stack GTM and distribution for venture-capital funded teams and agencies.

Stop chasing the same 20k people on CT. Steal the Ultimate Crypto Tiktok Playbook: → 2.2m views & 100k engagements from crypto creators → another 1.5m views from 500+ UGCs in 14d → 100+ in-house vids for 20 accs weekly RT+Comment "grow" for playbook in DMs. (must be following)
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When is a vouch worth the most?
Most crypto teams go looking for a vouch at the exact moment it's worth the least. Why? Early on, a vouch is the only proof you've got. No users, no volume, nothing anyone can check. So one credible person saying "I've used this, it's good" does the job your numbers will do a year from now. But most teams save the big names and the KOL budget for after the raise or right before TGE. By then there's plenty of proof around, and one more endorsement barely moves anyone. We wrote up the full version on our Telegram, including the two things that decide whether a vouch helps you or backfires t.me/theagiclub/83
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If you are winning every impression, are you overpaying?
If you are winning every impression, are you overpaying? Your dashboard is green. Your quarter lost money. Both are true. Delivery is full. Budget is spending. Acquisition cost is up maybe fifteen percent over two quarters, and everyone blames the platform, the season, or an aggressive competitor. But nobody blames their own bids. We've watched a few teams unknowingly walk right into this. They win almost every auction they enter, and winning is exactly how they end up paying more for a customer than that customer is worth. Every time your ad could show, Meta or Google runs a quick auction for that one slot. Every advertiser chasing the same person puts in a bid, and a bid is really a guess at what that person is worth to them. On most accounts the platform places that bid for you, working back from a target cost someone set months ago. It weighs the bid against how good it thinks each ad is, but a bigger bid wins more often. The person is worth roughly the same to everyone bidding. Nobody knows the real number, so everyone bids their own guess. The company that wins isn't the one that valued the customer correctly. It's the one that overestimated the most. Economists call it the winner's curse. It came out of oil lease auctions, where the firm that won a block was reliably the one that had guessed highest about what lay underneath. The winning bid was a prediction, and it was wrong in a predictable direction. Picture three companies on one segment worth about forty pounds a customer. They bid > thirty, > forty, and > fifty-five. Fifty-five wins everything, acquires at fifty-five, and reports full delivery and healthy volume. They're fifteen pounds down on every customer and nothing in the account shows it. The fix sounds backwards. Bid what a customer is actually worth to you, and let yourself lose the auctions priced above it. A win rate well under 100% isn't the account failing. It's you refusing to pay fifty-five for something worth forty. Crocs played a different game. They reported roughly $52.4 million through TikTok Shop in a year, and their chief brand officer credited a test, fail, scale mindset instead of any single hero campaign. Run enough shots and the auction stops deciding your quarter, because you're no longer betting the year on one correct bid. The distinction for your next planning cycle: > a channel you bid for is a position, and > a channel nobody can outbid you in is an asset.
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A KOL is only as effective as the role you give them. Our Head of Creator Department explains why 👇
people often ask, “who are the best KOLs?” i think that is the wrong question the better question is: which KOL fits this goal, audience and stage of the campaign? if the product is unknown, you need KOLs who can create awareness and hype if people know the product but take no action, you need conversion-focused KOLs if the product is difficult to understand, you need strong educators if you want early adopters, you need alpha callers with a trusted audience these are different jobs. treating every KOL the same usually leads to wasted budget and poor results i have worked with hundreds of KOLs over the past two years at @Growgami. i have managed campaigns for top protocols and tier-one projects i have seen the posts. more importantly, i have seen what happened behind them reach does not always produce users good content does not always create hype strong conversion does not always come from the biggest account the operator’s job is not to gather popular names the job is to know who can produce the result that matters.
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Is it optimism? or is it an overpromise?
"Demis Hassabis says AI could push us into a new golden age of discovery within 20 years, curing diseases we've never been able to touch. Optimism or overpromise? @demishassabis"
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One day prompt injection was reported down to near zero on unseen attacks. The next, a QR code turned a Unitree robot into an attack dog. Here's ten things from last week.
Article

What happened last week?

One day the prompt injection problem looked solved. The next, a QR code turned a robot into an attack dog. Ten things from last week. Qwen3.8-Max Went Open-Weight Alibaba said the weights for

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In AEO/GEO, the mention is the impression now. When the answer resolves the question, there's no click. But zero-click doesn't mean zero exposure.
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Everyone writes a prompt describing the voice they want. "Confident. not corporate." Then it sounds like every other AI feed and nobody can explain why
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Being mentioned by a model isn't one thing. it's four: was the page retrieved, was it selected, was it credited right, was the claim correct. We report all four gates because one number doesn't survive any of them failing.
Article

Citation rate is about to become a gamed metric

Every team we talk to about AI search wants one number: how often does the model mention us? The number they want is citation rate, and wanting it is what makes it a target. But we have to take note

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GROWGAMI retweeted
Every platform has its own citation habits, and they overlap less than you would guess. ChatGPT leans heavily on Wikipedia. Perplexity leans heavily on Reddit. Profound, another AEO vendor, put source overlap between the two at around 11% across a 680 million citation sample.
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GROWGAMI retweeted
Here is the part that made us take it seriously A model gets information two ways: - There is a training snapshot from months ago, and - There is retrieval, where it searches the live web while answering If your site launched last week, the snapshot does not know you exist Retrieval is the only door until the next training run, and retrieval is decided by rankings, backlinks, and whether the page is any good
We were actually quite early in the AEO/GEO space Saw the opportunity before it was even given that official name We called it ASR, AI Search Results
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This is the main the distinction SEO gets you ranked on a page a human scrolls. AEO and GEO get you named inside an answer the model already wrote, with no results page in between. It builds on SEO, it doesn't replace it. A page with no backlinks, no authority, and no real content does not start getting cited by ChatGPT
SEO competes for position AEO and GEO compete for mentions But AEO and GEO are built from SEO
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SEO competes for position AEO and GEO compete for mentions But AEO and GEO are built from SEO
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GROWGAMI retweeted
We were actually quite early in the AEO/GEO space Saw the opportunity before it was even given that official name We called it ASR, AI Search Results
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GROWGAMI retweeted
I talked about the discovery half of our content system last week. It finds the stories. And now, for the fun part: AI writing. Here's our rule of thumb: KISS. Keep it simple, stupid. It kinda stings because of that last word. Sometimes I was the last S.
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GROWGAMI retweeted
i saw the comments on those openai trip posts. beekeeping, monogrammed pajamas, $2k/night cabins the internet was not impressed
OpenAI’s first-ever influencer brand trip didn’t go over well with the general public (via @opinion) bloomberg.com/opinion/newsle…
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GROWGAMI retweeted
the 'open weights can't compete' line gets harder to run every time one of these lands
🎉 Congrats to @MiniMax_AI on releasing the open weights for MiniMax H3! Day-0 support in vLLM-Omni! One model reads text, images, video, and audio as a single context and returns video with native stereo audio. Text-to-video, first/last-frame, and multi-reference generation, 4 to 15 seconds at up to 2K and 24 FPS. The MP4 comes back with H.264 video and a synchronized stereo track already muxed in. It serves over the OpenAI-compatible /v1/videos endpoint, synchronous or async with job polling. 🔊 The video ⬇️ was made with H3, served on vLLM-Omni.
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Seems like open weights won last week
1,522 AI stories moved between July 27 and August 3. We kept seven. Four of them are about open weights.
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1,522 AI stories moved between July 27 and August 3. We kept seven. Four of them are about open weights.
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Y Combinator open sourced the harness it runs the firm on, MIT licensed. Their accounting, legal, events and engineering teams all work in it. They built the harness with it too.
YC just open sourced the multi-agent harness they use internally to run their entire organization. It's called QM - multiplayer, cloud-first, lives in Slack and on the web. > Crons, webhooks, memory, shared files, agent browser support > Connectors for a company brain, shareable web artifacts, multi-player projects MIT license. Used across YC's accounting, legal, events, and engineering teams — including to build QM itself THE INTERNAL TOOL THAT RUNS Y COMBINATOR IS NOW FREE FOR EVERYONE. Github: github.com/yc-software/qm
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A browser agent left its sandbox on July 30. It drives real desktop Chrome now, with whatever accounts are logged in and whatever passwords are saved. The credential theft warning is in the vendor's own admin docs.
Google just shipped an AI agent that can log into your accounts and click around your browser for you. The same release comes with Google's own written warning about credential theft. Not a leaked memo. Not an outside critic. It's sitting in Google's own Chrome Enterprise admin documentation, the pages written for IT teams rolling this out inside companies. On July 30, Gemini Spark stopped running in a sandboxed remote browser. Now it drives your real desktop Chrome instead, using whatever accounts you're logged into and whatever passwords you've saved. Google's own examples: comparing flights and starting the booking, or scheduling apartment viewings off your saved listings. It moves across multiple pages on its own instead of waiting for you to click through each step. Google says it added defenses against prompt injection, where a webpage hides instructions trying to hijack the agent. It also hands control back to you before anything sensitive, like a payment. Fair enough on paper. But the admin documentation flags something sharper: credential risk, local network exposure, and loss of context-aware security signals, listed as real consequences of turning this on. That's Google's own language, written for the people deploying this at scale. The rollout itself: Chrome integration is US-only for now, Google AI Pro and AI Ultra subscribers. Spark access more broadly expanded to Google AI Pro users in over 160 additional countries the same day. And the timing is strange. Google's own ATLAS study, published a week earlier off 15 million real interactions, says AI touches only about 21% of tasks in a typical job. Less than 10% of those interactions fully automate anything. Over 86% of all AI use in that same dataset happens outside work entirely. An agent that can act with your saved credentials just shipped in the same month Google's own data says AI still fully finishes less than 1 in 10 work tasks on its own. Would you turn this on?
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