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Adomate
Hey Product Hunt 👋
Simon here, co-founder and CEO of Adomate.
Before Adomate was a self-serve platform, Lucas and I ran it as a service, building and delivering Meta ad creatives by hand for DTC brands across Belgium and the Netherlands.
We wanted to feel the problem first:
Strategists losing 60-70% of their week to research instead of making
Rebuilding context from zero every Monday
No system connecting last week's winner to what gets briefed next
Creative is the last lever you actually control on Meta now that targeting and bidding are automated, and most teams still run it like it's 2019.
The solution
We built Adomate. It puts your performance data, competitor intel, and consumer signals into one workflow you build and own. A few things it's already done for early teams:
→ Increased number of winners and ROAS
→ Volume: helped Nomige to meet creative demand and deliver the number or creatives required for testing
→ Golden nuggets: automatically found usable insights in thousands of customer reviews
How it works
1. Feed in your performance data, brand brain, competitor ads, reviews, and consumer signals. One place, not ten tabs, so research time drops to minutes.
2. Build the workflow once. Every data point after that becomes an ad concept, so you stop starting from scratch every session.
3. Like the concept, skip it, or refine it in plain language. Point out a reference if you've got one. Every choice trains Adomate and saves a version, so getting from 80% to 100% takes minutes, not a new brief.
Why it's different
No black box. Every concept you see traces back to the exact data point that triggered it, the competitor ad, the review line, the performance metric. You can always see why.
Adomate doesn't replace your judgment, it amplifies it.
Who it's for
Creative strategists and performance marketers at DTC and e-commerce brands running Meta ads, plus agencies managing creative across multiple accounts.
If briefing your designer feels slower than it should, this is for you.
Special for the PH community
→ 30% off your first 3 months: PHMONTHLY30. 300 codes.
→ 50% off your first year: PHANNUAL50. 100 codes.
Apply the code at checkout. Valid until Friday 11:59pm PT, or until the codes run out.
Our ask
If you're running paid social, tell us what's broken in your workflow right now. That's the input that shapes what we build next.
👉 Get started for free to see what you can do with Adomate.
@lucas_desard and I will be here all day. 👇 Big thanks to @rohanrecommends for hunting us 🙏
@lucas_desard @s_logghe Good luck with the launch!
Adomate
@lucas_desard @sven_de_meyere1 Thanks Sven!
@lucas_desard @s_logghe Trying to answer your q. i think the biggest nightmare for us is turning winning static ads into video briefs. Huge congrats🙌 on the launch supported.
Adomate
@lucas_desard @rohanrecommends @priya_kushwaha1 Hi Prya, thank you for your input. On our roadmap: Video briefing generation from all types of sources: statics, videos, reviews, etc. Stay tuned!
@lucas_desard That's great 🙌
Trendtracker - Discover
Best of luck with the launch buddy! @s_logghe
Adomate
@yakha88 Thanks Yannick!
PopTask - AI Powered Menu Bar To-do List
@s_logghe the traceability is the part that gets me .. every concept pointing back to the exact review line or metric that triggered it 🙌🏽 that's the difference between a tool a strategist trusts and one they quietly stop opening
Adomate
@lilhadi Hi Haider, exactly. After months of working alongside performance marketers, we learned that handing control over to an LLM is not what they want. Marketers are trained to run experiments, draw conclusions, and build knowledge incrementally. We give them the insights and control to do just that, by working with ground truth data, letting them set up their own workflows, and building trust and understanding from the ground up.
PopTask - AI Powered Menu Bar To-do List
@s_logghe great approach, gonna give it try 💯
@lucas_desard @rohanrecommends @s_logghe From the buyer side, "at scale" is where these usually break for me. Generating 40 ad variants is easy; knowing which three to fund is the call agencies charge for. Does it close the loop with spend data and kill the losers, or just produce creative?
Adomate
@lucas_desard @rohanrecommends @artem_fedorovich Hi Artem, good question. Spend data is one of the 3 data sources we work with (next to ads from other brands and consumer reviews). So performance data is directly linked to the creative process and variants only get made from proven winners.
The traceability is the strongest part here. AI can generate endless ad ideas, but without knowing whether a concept came from a winning campaign, a competitor pattern, or an actual customer review, it is hard to trust or learn from the output. As someone doing more launch and marketing work, I can relate to rebuilding context across too many tabs and starting the creative process from zero every time. Curious how quickly Adomate learns a team's taste from likes, skips, and refinements before the concepts start feeling genuinely tailored :)
Adomate
@andrasczeizel Hi Andras, thank you for your comment. As always with data, the more the better :). So the more feedback Adomate can capture, the faster it goes. Users can also directly edit brand and taste settings themselves at the source.
Simon, you asked what is broken, so here is mine. I run paid acquisition in healthcare, and the thing that breaks is upstream of creative.
The loop learns from whatever the ad account calls a winner, and in my market that label is wrong. The conversion I can actually fire is a trial signup, and trials and paying customers are not the same population, so my real cost per paying customer came out roughly double what the platform reported. A creative engine trained on that will confidently scale the concept that produces the cheapest signups, which is not the one that produces revenue.
Can Adomate learn from an outcome uploaded back later, a paid conversion at day 30 for instance, or does winner mean whatever Meta says it means?
Adomate
@clemente_lopez1 Great question, Clemente. This is actually something Meta already supports. You can send your downstream business events (e.g. a paid subscription 30 days later) back through the Conversions API, so Meta can optimize for the outcome that actually matters, not just the trial signup.
If you have enough paid conversion volume, I’d recommend optimizing directly for that event.
If volume is limited, it can make sense to optimize for an earlier, high-quality event, ideally the best early signal for a conversion later (e.g. high product usage in the first few days after sign up) until Meta has enough signal.
I run paid social on the buying side and support on the receiving side, so the thing that is broken for me sits downstream of yours.
Golden Nuggets is the feature I would watch. The review lines that make the best ads are almost always about an experience rather than a product. Arrived in two days. They replaced it, no questions asked. That is exactly why they sound authentic, and it is also the moment the ad stops describing the product and starts making an operational promise.
The trace tells you where the claim came from. It does not tell you whether you can still keep it. That review was true for one customer, in one country, under last year's courier contract. Run it as an ad and you have made that promise to everyone who sees it.
And it does not fail where you are looking. ROAS goes up, because it is a good promise. It shows up two weeks later in the inbox as "your ad said two days", and nobody connects that ticket back to the creative that caused it.
What I would want, and you are closer to it than anyone because you already hold the trigger: flag which concepts make a claim about time, price, returns or availability, as against a claim about how the thing looks or feels. The first kind needs one person to confirm it is still true before it runs. The second does not. Everything you need to tell them apart is already sitting in the data point you traced back to.
Adomate
@jernej_jan_kocica Hi Jernej, your feedback is very true. Within the Review dataset in Adomate, you can slice and dice the data the way you want. Based on the use case you described, you could simply add a column that classifies every review in one of the categories you describe (time, price, returns, availability, product, etc). This way you can ignore the reviews that don't make sense.
@s_logghe That works for picking which reviews to mine, and it is the right first move. The bit I would push on is that filtering them out throws away your best material.
The operational lines are the ones that sound most human, which is exactly why they make the strongest ads. So you do not really want them excluded, you want them routed. Same column, different destination. Product claims go straight through, time and returns and availability go to whoever can confirm the promise is still one you can keep.
The harder half is that the answer is not in the review dataset at all. Whether "arrived in two days" is still true depends on this year's courier contract, not on anything a reviewer wrote. So the column tells you which concepts need an answer, but somebody outside the tool has to give it. Which is fine, it just means the check is a person rather than a filter..
Adomate
@jernej_jan_kocica Hi Jernej, yes makes sense. Validity of the claims to make is definitely very important. And even more if they change over time. The brand brain contains all information about claims to make. For the use case you describe, an approval flow could be introduced to the person going over the operations.
@s_logghe That is the right shape, and the brand brain is probably a better home for it than the review pipeline, because the claim outlives the review that suggested it.
One thing that would stop the approval becoming another queue: only ask when the claim is new. If someone already confirmed two day delivery this quarter, the next concept leaning on it should not stop. Ask once per claim rather than once per ad, or the approval turns into the thing people click through without reading.
Thanks for taking a critical comment seriously on launch day. Not everyone does..
Fedica
Adomate
@hamza_afzal_butt Every interaction with newly created content is captured on the backend, so the system can learn from the feedback users provide, think of it like swiping left or right on Tinder. Users can also access the brand brain directly, which contains all the visual style elements of the brand.
Congrats on launching! We spend way too long digging through customer reviews to find angles for ads, so pulling Trustpilot and Amazon feedback into the same workspace as ad performance sounds really handy. How does it work for smaller brands that only have a handful of reviews and a modest ad account to learn from?
Adomate
@doganakbulut Hi Dogan, every brand needs to start somewhere! That's why we allow users to draw on proven ads from more established brands. On top of that, competitor reviews can also serve as a data source, think of it as leveraging the frustrations customers express about your competitors and positioning yourself as the better alternative.
Walkable
Love the product and the team. From my previous launch, I met with Ozan (he is in Adomate team) and he showed me the demo of the Adomate. The most interesting part they are generate creatives by learning from your competitors. I'm planning to use it for my e-commerce business. Hopefully, in near future I can use for my apps too :)
Adomate
@metehan_caliskan Thank you for your input. Initial focus is on DTC and Saas, but apps are definitely a field we further want to explore!