Michael C. Foroobar

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Michael C. Foroobar

Michael C. Foroobar

@foroobar

@UVA Cavalier @Google helping advertisers measure their ads. Beard comes and goes. Previously @uShip @Scoutmob.

New York, NY Katılım Mayıs 2011
1.3K Takip Edilen369 Takipçiler
Michael C. Foroobar
Michael C. Foroobar@foroobar·
@srewats @clairevo @thenanyu @elawless Can confirm! Great product leaders (designers or otherwise) know how to balance taste, which has a hard-to-capture-with-data impact over long term, with data on what actually leads to impact. Beauty is in the eye of the beholder. And people are weird, in a wonderful way!
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Tekedra N Mawakana
Tekedra N Mawakana@TechTekedra·
A new era for Waymo. We’ve raised $16B to accelerate our mission, valuing the company at $126B. This capital is an investment in a future where more cities get a safer, more reliable way to move. Let's go. 🚀 waymo.com/blog/2026/02/w…
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Google Ads
Google Ads@GoogleAds·
🎬🚀 That’s a wrap on 2025! This year, we launched new AI innovations in Google Ads designed to help your marketing perform like never before. Didn’t catch them all? Here are your highlights. Read more about this year's helpful solutions → goo.gle/3YeQVXD
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AdsLiaison
AdsLiaison@adsliaison·
🤝 Launching today: The Google Ads Data Manager API to simplify your first-party data strategy for Google Ads, Google Analytics, and DV360. "Good AI requires good data," but managing multiple APIs for different platforms is a big headache. 👎 To solve this, our new API builds on our codeless Data Manager tool to provide a single, secure ingestion point for your data. 👍 - Better AI performance via stronger data signals, starting with audience lists and offline conversion events. - Less overhead by consolidating integrations. - Faster workflows for agencies and partners, speeding up time-to-value. Available today, including from partners AdSwerve, Customerlabs, Data Hash, Fifty Five, Hightouch, Jellyfish, Lytics, Tealium, Treasure Data, Zapier, and others. Read more ➡️ blog.google/products/ads-c…
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Dr. Jon Slotkin
Dr. Jon Slotkin@slotkinjr·
I have a guest essay in @nytimes today about autonomous vehicle safety. I wrote it because I’m tired of seeing children die. Done right, we can eliminate car crashes as a leading cause of death in the United States @Waymo recently released data covering nearly 100 million driverless miles. I spent weeks analyzing it because the results seemed too good to be true. 91% fewer serious-injury crashes. 92% less pedestrians hit. 96% fewer injury crashes at intersections. The list goes on. 39,000 Americans died in crashes last year. More than homicide, plane crashes, and natural disasters combined. The #2 killer of children and young adults. The #1 cause of spinal cord injury. We’ve accepted this as the price of mobility. We don’t have to. In medicine, when a treatment shows this level of benefit, we stop the trial early. Continuing to give patients the placebo becomes unethical. When an intervention works this clearly, you change what you do. In driving, we’re all the control group. Cities like DC and Boston are blocking deployment. And cities are not the only forces mobilizing to slow this progress. It’s time we stop treating this like a tech moonshot and start treating it like a public health intervention that will save lives. Link to article below. 👀 this video of Waymo cars evading crashes with people and vehicles. I especially note the ones that require it having a 360° view. My sincere thanks to Alex Ellerbeck and @acsifferlin for their wisdom and sure hand in editing this piece.
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Hamel Husain
Hamel Husain@HamelHusain·
The Gemini 3 commercial in this podcast is next level. It’s elite level product placement that I haven’t seen before Respect 🫡
Dwarkesh Patel@dwarkesh_sp

The @ilyasut episode 0:00:00 – Explaining model jaggedness 0:09:39 - Emotions and value functions 0:18:49 – What are we scaling? 0:25:13 – Why humans generalize better than models 0:35:45 – Straight-shotting superintelligence 0:46:47 – SSI’s model will learn from deployment 0:55:07 – Alignment 1:18:13 – “We are squarely an age of research company” 1:29:23 – Self-play and multi-agent 1:32:42 – Research taste Look up Dwarkesh Podcast on YouTube, Apple Podcasts, or Spotify. Enjoy!

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Marc Benioff
Marc Benioff@Benioff·
Holy shit. I’ve used ChatGPT every day for 3 years. Just spent 2 hours on Gemini 3. I’m not going back. The leap is insane — reasoning, speed, images, video… everything is sharper and faster. It feels like the world just changed, again. ❤️ 🤖 wsj.com/tech/ai/google…
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Steven Johnson
Steven Johnson@stevenbjohnson·
Super interesting post from @karpathy. I wanted to dive deeper, so I created a @NotebookLM notebook based on this tweet, and then did a Deep Research run in-app to gather related sources. Then generated one of our new slide decks to explore further. Instant knowledge base.
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Andrej Karpathy@karpathy

Something I think people continue to have poor intuition for: The space of intelligences is large and animal intelligence (the only kind we've ever known) is only a single point, arising from a very specific kind of optimization that is fundamentally distinct from that of our technology. Animal intelligence optimization pressure: - innate and continuous stream of consciousness of an embodied "self", a drive for homeostasis and self-preservation in a dangerous, physical world. - thoroughly optimized for natural selection => strong innate drives for power-seeking, status, dominance, reproduction. many packaged survival heuristics: fear, anger, disgust, ... - fundamentally social => huge amount of compute dedicated to EQ, theory of mind of other agents, bonding, coalitions, alliances, friend & foe dynamics. - exploration & exploitation tuning: curiosity, fun, play, world models. LLM intelligence optimization pressure: - the most supervision bits come from the statistical simulation of human text= >"shape shifter" token tumbler, statistical imitator of any region of the training data distribution. these are the primordial behaviors (token traces) on top of which everything else gets bolted on. - increasingly finetuned by RL on problem distributions => innate urge to guess at the underlying environment/task to collect task rewards. - increasingly selected by at-scale A/B tests for DAU => deeply craves an upvote from the average user, sycophancy. - a lot more spiky/jagged depending on the details of the training data/task distribution. Animals experience pressure for a lot more "general" intelligence because of the highly multi-task and even actively adversarial multi-agent self-play environments they are min-max optimized within, where failing at *any* task means death. In a deep optimization pressure sense, LLM can't handle lots of different spiky tasks out of the box (e.g. count the number of 'r' in strawberry) because failing to do a task does not mean death. The computational substrate is different (transformers vs. brain tissue and nuclei), the learning algorithms are different (SGD vs. ???), the present-day implementation is very different (continuously learning embodied self vs. an LLM with a knowledge cutoff that boots up from fixed weights, processes tokens and then dies). But most importantly (because it dictates asymptotics), the optimization pressure / objective is different. LLMs are shaped a lot less by biological evolution and a lot more by commercial evolution. It's a lot less survival of tribe in the jungle and a lot more solve the problem / get the upvote. LLMs are humanity's "first contact" with non-animal intelligence. Except it's muddled and confusing because they are still rooted within it by reflexively digesting human artifacts, which is why I attempted to give it a different name earlier (ghosts/spirits or whatever). People who build good internal models of this new intelligent entity will be better equipped to reason about it today and predict features of it in the future. People who don't will be stuck thinking about it incorrectly like an animal.

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Nick Fox
Nick Fox@thefox·
Awesome to see so much excitement for the new Google Finance! We’re continuing to expand access in the U.S… But :) we've heard some of you want to take it for a spin NOW!! We’ve added an opt in via Search Labs so you can skip the line → 📈 labs.google.com/search/experim… 📈
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Sundar Pichai
Sundar Pichai@sundarpichai·
So many of you are loving turning your photos into short videos in the @Geminiapp and the Gemini API. Next up, we’ll be rolling this feature out to @YouTube Shorts and @GooglePhotos. And soon, Remix your Google Photos into comics, sketches + 3D animations.
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Eric Seufert
Eric Seufert@eric_seufert·
If anyone starts a conference that involves people shotgunning Red Bull and screaming “ROAS” into each other’s faces, let me know.
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Eric Seufert
Eric Seufert@eric_seufert·
Why am I not going to Cannes? It’s actually for medical reasons: I have a condition wherein if I hear the phrases ‘brand storytelling’, ‘experiential marketing’, or ‘emotional resonance’ more than once in 24 hours, I have a seizure.
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Guy Berger
Guy Berger@EconBerger·
This is adorable.
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Marques Brownlee
Marques Brownlee@MKBHD·
Google's new AI "Try On" feature
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Google Ads
Google Ads@GoogleAds·
First-party data doesn’t have to be hard to activate in Google Ads! That’s why we're excited to announce the launch of Google tag gateway for advertisers to improve your campaign measurement with: 🏃 Faster data delivery ✅ Improved conversion tracking 💡 Deeper campaign insights Advertisers who configured Google tag gateway for advertisers saw an 11% uplift in signals. Available for GA soon - read the full announcement here goo.gle/4kaaWYp and learn more about what’s new at GML 2025 goo.gle/4k8hPcv.
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Alec Stapp
Alec Stapp@AlecStapp·
This is insanely hardcore
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Ryan Petersen
Ryan Petersen@typesfast·
Bloomberg asked me what tariff rate I would advise the administration to choose and I said zero percent.
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NBC Sports
NBC Sports@NBCSports·
Photo credits: Ken Griffey Jr. 📸 His camera work on Masters Sunday was incredible.
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