April 3, 2025
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Ben Fielding: Decentralizing Machine Intelligence

Gensyn’s CEO on How Decentralized AI Can Compete with Big Tech. Fielding is a speaker at this year’s consensus festival, appearing at the ai summit.”, – WRITE: www.coindesk.com

Gensyn’s CEO on How Decentralized AI Can Compete with Big Tech. Fielding is a speaker at this year’s consensus festival, appearing at the ai summit. APR 2, 2025, 5:42 PM UTC

It Started with a noisy desk. The Desk Was A Wooden Cubicle in A Lab at Northumbria University, In Nortorn England, WHERE A Young Ai Researcher Began His Phd Track. This was in 2015. The Researcher Was Ben Fielding, Who Had Built A Large Machine Stuffed with Early Gpus to Develop AI. The Machine Was So Loud It Annoyed Fielding’s Lab-Mates. Fielding Crammed the Machine Beneath the desk, But It Was So Big He Had to Awkwardly Stick His Legs To The Side.

Fielding Had Some Unorthodox Ideas. He Explored How “Swarms” of AI – Clusters of Many Different Models – Could Talk to Each Other and Learn from Each Other, Which Might Improve the Collective Whole. There Was Just One Problem: He Was Handcuffed by the Realities of that Noissy Machine Beneath His Desk. And He Knew He Was Outgunned. “Google Was Doing This Research As Well,” Fielding Says Now. “And they had thonsands [of GPUs] in a Data Center. The Things they doing wren’s. I Knew The Methods … I Had Lots of Proposals, But I Couldn’t Run Them. ”

Ben Fielding, CEO OF GENSYN, IS A Speaker at Consensus 2025 in Toronto.

Jeff Wilser is the Host of the People’s AI: The Decentralized AI Podcast and Will Host the ai Summit at Consensus 2025.

SO A DECADE AGO, IT DAWNED ON FIELDING: Compute Constraints Wuld Always Be An Issue. In 2015, he Knew that if compute was a hard constraint in Academia, it wound absolutely be a hard constraint WHEN AI Went Mainstream.

The Solution?

DECENTRALIZED AI.

Fielding CO-FOUNDED GENSYN (Along with Harry Grieve) in 2020, or Years Before Decentralized AI Became Fashionable. The Project Was Initially Known for Building Decentralized Compute – and i’ve Spoken with Fielding About this for Coindesk and on Panel After Panel athl Network for Machine Intelligence. ” They’re Building Solutions Up and Down The Tech Stack.

And now, A decade after fielding’s noisy desk Annoyed his Lab-Mates, The Early Tools of Gensyn Are Out in the Wild. Gensyn Recently Released ITS “RL SWARMS” PROTOCOL (A Descendant of Fielding’s Phd Work) and Just Launched ITS Testnet – Which Brings Brings Bringschain Into The Fold.

In this conversing leading up to the ai summit, at consensus in toronto, fielding gives a primer on ai swarms, explans how’s blockchain snaps into the puzzle, and shares whi. Giants – “Should have the right to build machine learning technologies.”

This interview has been Condensed and Lightly Edited for Clarity.

Congrats on the Testnet Launch. What’s The Gist of What It Is?

Ben Fielding: I The Addition of the First MVP Features of Blockchain Integration with What We’ve Launched So Far.

What Were Those Original Features, Pre-BlockChain?

So we launched rl [Reinforcement Learning] Swarm A Few Weeks Ago, Which Is Reinforcement Learning, Post-Training, AS A PEER-TO-PEER Network.

Here’s The Easiest Way to Think About It. WHEN A Pre-Trained Model Goes Through Reasoning Training-Like DeEek-R1-IT Learns to Critique ITS OWN Thinking and Recursively Improve Against The Task. It Can Ten Improve Its Own Answer.

Weing that Process One Step Further and Say, “i i Great for Models to Critique its Own Thinking and Recursuresiely Improve. What If IFTHERTHYTIKYTIKYTIKIER MOCHIER MODELS AND CRITIER If You Get Many Models Together in A Group That Can All Talk To Each Other, They Start Learning How To Send Information To The Other Models… With The Overall Goal of Improving The Ent.

Gotcha, whochh explains the name “swarm.”

Right. It’s this training Methodohd WHICH ALLOWS MANY MODELS TO Kind of Combine, In PARALLEL, TO IMPROVE the OUTCOME OF A Final Meta-Model That You Could Create from Those Models. But at Same Time, You HAVE EVERY SINGLE INDIVIDUAL MODEL JUST IMPROVING ON ITS OWN. So if you were to come with along with a model on a macBook, join a swarm for and hour and these drop backs Out again, you would have an Improved local model. Improved The Other Models in the Swarm. I This Collaborative Training Process That Any Model Can Join and Any Model Can Do. So that’s what rl swarm is.

Okay, so that’s what you released a few weeks ago. NOW WHERE DOES BLOCKCHAIN ​​Come In?

SO The Blockchain Is US MOVING FORWARD PRIME OF THE LOWER-LOWER PRIMITIVES INTO the System.

Let’s Just Pretend that someone doesn’t undesstand the phrase “Lower-Level Primities.” What do you mean by that?

Yeah, so i mean, very close to the resource Itelf. So if you think about the software stack, you’ve got a gpu stack in a Data Center. You’ve Got Drivers On Top of the GPU. You’ve Got Operation Systems, Virtual Machines. You’ve Got All this Stuff going up.

SO A LOWER-LOWER PRIMITIVE IS The CLESESEST TO THE BOTTOM FORUNDATION IN THE TECH STACK. Am i getting that right?

YES, Exactly. And the rl swarm is a demonstration of what’s posyble, Basically. IT’s Just A Somewhat Hacky Demo of Doing Really Interesting Large-Scale, Scalable Machine Learning. But What Gensyn’s Been Doing for the Past Four-Plus Years, Realistic, Is Building Infrastructure. And so we’re in this period now the infrastructure is all that v0.1 sort of beta level. I All Done. I Ready to go. We have to Figure Out How The World What’s Possible WHEN IS QUITE A Big Shift to the Way People Think of Machine Learning.

It Sounds Like You Guys Are Doing A Lot More Than Decentralized Compute, or Even Infrastructure?

We have Three Main Components That Sit Underneath Our Infrastructure. Execution – we have a consistent execution libraries. We have Our Own Compiler. We have reproducible libraries for any Hardware Target.

The Second Piece Is Communication. SO assume you can just Run A Model on the Any Device in the World That’s Compatible, Can You Get Them To Talk To Each Other? If everybody’s opts in the SAME STANDARD, EveryBody Can Communicate Like TCP/IP from the Internet, Basically. SO we build Those libraies and rl swarm is an example of that communication.

And then, Finally, Verification.

AH, AND I’M GUESING THIS IS WHERE BLOCKCHAIN ​​ComES IN…

Imagine A Scenario WHERE EVERY DEVICE IN THE WORLD IS Executing Consisteient. They Could Link Models Together. But Can they Trust Each Other? If i Connected My MacBook to Yours, Yes, They Could Execute the Same Tasks. YES, They COURCE SEND TENSORS BACK AND FORTH, But DO KNOW THAT WHAT SEND TO The Other Device Is Actual HapPening on the Other Device or Not?

In the current World, You And I Wow Probably Sign A Contract To Say, Yes, We Agree That We’ll Make Sure Our Device Do the Right Thing. In the Machine World, It Needs to Happen ProgramMatical. So that’s the Final Piece We Build, Cryptographic Proofs, Probabilistic Proofs, Game Theoretic Proofs to Make That Process Entirely Program.

So that’s whore the blockchain comes in. It Gives US All of the Benefits of Blockchain You Can Imagine, Like Persent Identity, Payments, Consensus, Etc. And so what we’re doing with the testnet now takeing rl swarm and the primitivers of the other infrastructure and we’re adding in the blockchain components and saying, ‘hey, whohn yoe jon jon joy Identity, whots Out there on a decentralized Ledger. ‘

In the Future You’ll Have the Ability to make payments, But Right Now, You have that trust consensus mechanism WHERE We Can Terminate Disports. SO, i Kind of an mvp of the Future Gensyn Infrastructure, WHERE We’re Going to Add in Components As We Go.

Give US A Tease of What’s Coming Down The Pipeline?

WHEN We Reach Main-Net, All of the Software and Infrastructure is Live Against Blockchain as The Source of Trust, Payments, Consensus, Etc., Identity. This is the first step of that. It’s Adding Identity in and Saying WHEN YOU JOIN A SWARM, YOU CAN REGISTER AS The SAME PERSON. Everyone Knows Who You Are Without Having to Check Someized Server or Website Somewhere.

Now Let’s Get Wild and Talk Further in the Future. What does this look like One Year from Now, Two Years From Now, Five Years From Now? What’s Your North Star?

Sure. The Ultimate Vision is to Take All of the Resources That Sit Under Machine Learning and Make Them Instantanement ProgramMatical Accessible To Evelyone. Machine Learning is Heavily Constrained by Its Core Resources. This Creates this Huge moat for Centralized Ai Companies, But It Doesn’t Need to Exist. It Can Be Open-Sourced If We Can Build The Right Software. SO OUR VIEW IS GENSYN BULDS All of the Low-Level Infrastructure to Alow That To Get As Close To Open-Surce As It Possibly Can. People Should have the right to buy machine Learning Technologies.

Jeff WilserJeff Wilser Is The Author of 7 Books Incling Alexander Hamilton’s Guide to Life, The Book of Joe: The Life, Wit, and (SomeTimes Acidental) and Humor. Jeff is a Freelance Journalist and Content Marketing Writer with Over 13 Years of Experience. His work have been Published by the New York Times, New York Magazine, Fast Company, GQ, Esquire, Time, Conde Nast Traveler, Glamor, Cosmo, Mental_floss, Mtgl Miami Herald, and Comstock’s Magazine. He Covers A Wide Range of Topics Including Travel, Tech, Business, History, Dating and Relationships, Books, Culture, Blockchain, Film, Finance, Productivity, Psychology Plain-Talk. ” His tv appearances have ranged from bbc news to the view. Jeff Also Has A Strong Business Background. He Began His Career As A Financial Analyst for Intel Corporation, and SPENT 10 YEARS PROVIDING DATA Analysis and Customer Segmentation InSights for A $ 200 Million Division of Scholastic. This Makes Him A Good Fit for Corporate and Business Clients. His Corporate Clients Range from Reebok to Kimpton Hotels to Aarp. Jeff is Represented by Rob Weisbach Creative Management.

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