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27 contributions to Start My AI
Grok Bot with T3 Code
I’ve been running pstack inside Cursor for a while. It's a great setup with one problem. Every delegate runs at Cursor usage rates, so the models I actually want on hard tasks were too expensive to use by default and maxing out my free other usage that I prefer go to bug bot. Meanwhile I'm already paying for Claude Max, ChatGPT Pro, and SuperGrok Heavy. I wanted the pstack playbooks with my subscriptions doing the work. So I forked it. Grok Bot became the orchestrator and T3 Code became the execution layer which would give me similar workflows to using grok bot with cursor cloud agents except the cloud is my hardware, and I can use my subscriptions instead of cursors api rates for my other models as well as incorporating my local models and open router if necessary. And I can do it all from my phone which allows me to leave my office and still get work done :) Grok Bot holds the router, the playbooks, and the table that says which model handles which kind of job. It decides what runs where and writes the brief. T3 Code runs on a Mac Studio in my home network and wraps the coding CLIs I already pay for: Claude Code, Codex, Grok Build, and a local model. For each step, Grok Bot opens a T3 thread on the right provider, sends the brief, waits, and reads the results. My original plan was to have Grok Bot use T3 Code the way I do: through the app. That went badly. T3 is built for a human with a screen, and the Bot struggled to drive it reliably. It could get a thread open, but sending work in, knowing when the delegate was actually finished, and pulling the result back out was fragile every time. An orchestrator that can't tell "done" from "still thinking" isn't an orchestrator. The fix was to stop asking the Bot to use a UI and give it a tool shaped for a bot. We built a small command-line tool with exactly the handful of actions the playbooks need: start a thread, send it work, wait for it to finish, read what came back, cancel it. Every action has a clean start and a clean end. Once the Bot had that, the pilot lanes ran hands-off. That's the biggest lesson in the whole project: if an agent is fumbling a tool, don't write a better prompt, build a better interface.
2 likes • 4d
@Maria Martins I’ve been doing a lot of testing and so far so good. Best part is t3 has a universal skill folder for any model you plugin so you just keep the skills in one spot and all the models share.
1 like • 19h
@Ray Fernando @Maria Martins im putting in some work this afternoon on this and hopefully I can invite you guys to the repo to check it out. I was in such a hurry to see if I could make it work I need to make the setup piece a little more frictionless. Going to include a Grokbot template as well.
Let's talk computer use
I tried the codex app's computer use functionality last week with 5.6 luna. I had it delete an email, then delete an email based on the sender's name. Then change my brave browser's default search engine from brave to google search. It oneshotted everything. I was surprised because a year ago I tried something similar with computer use and gpt-4o. It failed miserably. Codex only released in feb and it's computer use is already so good. I am in the construction industry doing a startup and computer use has so many use cases, it can input hundreds of items that have to be normally written manually. Saves hours of time. Haven't been this impressed about something ai related in a while 😁
2 likes • 5d
Yeah the first app I ever built was on gpt 4. Where we are today versus where we were a year ago is pretty amazing.
Lauren’s dr eggbot builds better Grok Bots
Lauren Tan (poteto) shipped dr eggbot, a Grok Bot that designs other Grok Bots. You tell it the job. It asks a few preference questions, then creates the bot. Coding bots get the poteto-mode bar: one job, unslopped, verified. Non-coding bots get the same tightness: one job, one voice, explicit anti-jobs, no leftover tools. She just used it to build tinkabot (her plugin builder). If you’re spinning up teammates in Grok Bot, start here instead of hand-writing vague agents. Install: https://x.ai/bot/93gOz3op1UQdBdbekQFLK Lauren: https://x.com/poteto/status/2093392701005946931
2 likes • 7d
Time to get a dozen eggs goin :)
People Pay $200 a Year. I'm Charging $5 Once
People pay $200 a year for transcription. I'm charging $5 once, and the model lives on your phone. I needed my own transcriptions done. Then I put it in an app you keep forever. You compare yourself to what's already out there. I spent 12 years at Apple. I'm building this live. Members can watch now. Live for everyone at 7am PT. Watch: https://youtu.be/byTknY2Rgxw
2 likes • 9d
Great insight. As much as w era e become accustomed to subscriptions a one time micro transaction is always a no brainer for sure.
GLM-5.3-Flash is the first local model that feels frontier to me
I’ve been running open-weight models locally for a while. GLM-5.2 on a 512GB Mac Studio was capable, but you always felt the ceiling: 2-bit quant, 5-9 tok/s, tool calls that got flaky in long agent sessions. Local was the thing you tolerated to keep data on your network. DeepSeek V4 Flash was the first real step forward — finally a local model with a genuine balance of performance and speed, one you could actually leave running under agent traffic without babysitting it. It proved the “fast MoE with real agentic chops” formula worked. 5.3-Flash on two DGX Sparks takes that further. 320B params but only 18B active, so it’s running at good speeds. 1M context. Thinking is always on but tunable (low/high/max), and at max it holds up in real agent work through Hermes: multi-step coding, sustained tool calls, no hand-holding. I’m still reaching for cloud models. But for the first time I can see a point coming where you won’t have to. The gap is closing faster than I expected — if you have the hardware, this is the one to try.
1 like • 9d
@Tanya D first thing I’m doing is using it as a coding documentation agent for my software factory I’m working on. After that we’ll see.
0 likes • 9d
@Tanya D that’s the biggest problem. Everyone is trying to use the “best” but it changes weekly so everyone is ripping down what they have and using something else. Right now it’s grok bot and cursor but I think what I’ve realized from working with Ray and doing my own research is the process needs to be able to just plug in anything and with that I think I’ve decided to go the pi route (with t3 code once pi integration is done) and then give that to my grok bot. I have my codex, Claude, cursor and grok models setup in t3 code along with opencode to use my local model of the week. I think in the end that’s going to be the best as you can use any device you own from your phone if need be and have different machines doing different tasks.
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Rob Gluckin
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85 points to level up
@rob-gluckin-9555
Owner of a Florida MSP

Active 2h ago
Joined Aug 14, 2026
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