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Tim CheungTim Cheung@timche_๐•
tenet using Jev is up to 275x cheaper and 104x faster than Claude agents ๐Ÿคฏ Same 2,000-line diff, same rules. tenet: 1.5 s, $0.0036. One Claude Fable 5.1 call: 157 s, $0.99. Your agent fixes its own review findings before you ever see the diff. https://t.co/Rr1BpU53ak
0116X postsยทTools & appscost$0.0036time1.5 sOriginal source โ†—
Nikhil BafnaNikhil Bafna@zodvik๐•
Created a one-off Chrome extension to remove low quality posts (filtered using Jev) from Twitter, and posts with videos. Feed has become so much better.
0108X postsยทTools & appsOriginal source โ†—
Tim CheungTim Cheung@timche_๐•
Spent a day building tenet, a review gate for code that agents write. It judges each commit, commit message and PR against rules written in plain language, using Jev by @typesafeai. The rules come from @poteto's unslop skill, @hvpandya's stop-slop, @dillon_mulroy's anti-slop and @mattpocockuk's new /pr skill. It also generates rules from your AGENTS.md or CLAUDE.md, and you can write your own rules and presets. Here an agent trips four of them, gets blocked in 1.07 s for $0.0003, and fixes its own findings.
0107X postsยทTools & appscost$0.0003time1.07 sOriginal source โ†—
AMPโšก๏ธAMPโšก๏ธ@arisetyo_v2๐•
My first real experiment with Jev: project scorer. It takes the specs, source code, and graph (Graphify output) from a codebase, then analyzes them using Jev, Lizard, and Networkx to create project "quality metrics" based on a configurable rubric. https://t.co/lCryvd749u
0106X postsยทTools & appsOriginal source โ†—
Ivan CamposIvan Campos@ivancampos๐•
Using Jev to detect and classify a statement against 50 logical fallacies only takes a few hundred milliseconds and costs $0.000128 per 3k input token request. The response times make the UX feel instant! https://t.co/pwh2b7crGV
0102X postsยทTools & appscost$0.000128 per 3k input token requesttimea few hundred millisecondsOriginal source โ†—
Brian ViaBrian Via@BrianVia๐•
Guys I made an extension for LinkedIn using Jev from @typesafeai to remove anything it classified as ai-slop and this is what it left me - did it in under 200ms btw and only cost me a fraction of a penny. https://t.co/0falPlXy0N
0100X postsยทTools & appscosta fraction of a pennytimeunder 200msOriginal source โ†—
Pedro Nauck โŒ compozy.comPedro Nauck โŒ compozy.com@pedronauck๐•
I got up to 50% less context usage on Claude Code and Codex using Jev from @typesafeai a proxy asks Jev which parts of the history are still needed and drops the rest before the request goes out. 8/8 exact answers on the real APIs, numbers is in the last tweet bellow ๐Ÿ”ฅ๐Ÿ”ฅ๐Ÿ”ฅ https://t.co/WnxBl3I380
0098X postsยทTools & appsOriginal source โ†—
Tamir@TamirSPIRITT๐•
introducing JevForm, a form that dynamically branches and chooses what to ask next usinng @typesafeaiโ€™s Jev in my life iโ€™ve made hundreds of forms with crazy if/then logic. Jev solves it. built with @vercel json-render (by @ctatedev), so theoretically it can support any generative form UI, and @DavidKPianoโ€™s xstate for the actual state Play with it here: https://t.co/0TwQD3wEH8
1797X postsยทTools & appsOriginal source โ†—
aniol@0xaniol๐•
today i built talkr, a speech analyzer using @typesafeai > talkr gives you a topic > you talk about it for 30s > jev analyzes your speech: pauses, filler words, repetitions, confidence, clarity > you get a score and feedback to improve canโ€™t wait to 10x my speaking skills https://t.co/ENybzQkIW8
1796X postsยทTools & appsOriginal source โ†—
Kurt Buhler@kurtbuhler๐•
Here's an example of Jev routing tools, skills, cli commands for Qwen 3.8 27B on @cerebras to format a Power BI report. Changes are almost instant; working on Linux, only wait due to publishing and refreshing embedded report. The video is not sped up, at all. Just a start. https://t.co/AZWKXZFYzR
1790X postsยทTools & appsOriginal source โ†—
ใƒŽใ‚ฆใƒ@ouchi๐•
Jevใ‚’ไฝฟใฃใŸ้Ÿณๅฃฐ่ช่ญ˜ใ‚ขใƒ—ใƒชใ‚’ไฝœใฃใฆใฟใŸ ่ฉฑใ—ใŸๅ†…ๅฎนใ‚’ๆ–‡ๅญ—่ตทใ“ใ—ใ—ใฆใ€ใใ‚Œใ‚’JevใŒ้‡่ฆๅบฆๅˆคๅฎšใ™ใ‚‹ ้‡่ฆใชๆ–‡็ฏ€ใปใฉใƒ•ใ‚ฉใƒณใƒˆใŒๅคงใใใ€่‰ฒใ‚‚ๆฟƒใใชใ‚‹ใฎใงใ€ใ‚ใจใง่ฆ‹่ฟ”ใ™ใจใใซใƒฉใ‚ฏ๏ผใฟใŸใ„ใชใ‚คใƒกใƒผใ‚ธ ่ญฐไบ‹้Œฒไฝœๆˆใจใ‹ใซไฝฟใˆใ‚‹ใ‹ใ‚‚ใ—ใ‚Œใชใ„ https://t.co/9hPeg6myjB
1789X postsยทTools & appsOriginal source โ†—
ss@kyamilass๐•
I asked jev to analyse and rate my 2442 posts on X and it's review was brutal to say the least, here's a 2-minute snapshot of the run (3x speed up) The whole run took around 8mins getting us to ~5 posts/second which is quite low, am I doing something wrong? https://t.co/Fli47KhwhO
1787X postsยทTools & appstimearound 8minsOriginal source โ†—
Dagmawi BabiDagmawi Babi@DagmawiBabi๐•
I vibe-coded this simple, open-source and local Telegram content analyzer using Jev as a classifier. Jev Classifier โ€ข https://t.co/Ux7mYLwStF Export your channel data as JSON and it will analyze each post's intent, quality, sentiment, and reaction tone and if it's a DM/Group chat it will analyze topic, intention, and emotion, plus a per-speaker tone summary. I made it very extensible so you can use Vercel AI Gateway API Key or @typesafeai's, you can also goto the settings and configure Jev so the questions and choices can be customized to your needs. https://t.co/sWz5x38mGl
0085X postsยทTools & appsOriginal source โ†—
Ayush GuptaAyush Gupta@itsayush__๐•
AI coding agents just got caught lacking! Built Greenwash, a GitHub app that catches AI coding agents pass the CI checks silently. This tool reviews the PR lightning fast! โšก๏ธ Built with Jev, the model from @typesafeai. Huge thanks to @notkevinzhang and @justKDeng for getting me off the waitlist. Link in the Threadโ€ฆ๐Ÿงต
0084X postsยทTools & appsOriginal source โ†—
ChetasluaChetaslua@chetaslua๐•
๐Ÿšจ I gave the Trump vs Kamala debate a live BS meter using Jev every sentence, both candidates, 5 yes/no questions each 1,191 Jev calls / 1.18M tokens / 415 ms median total cost : $0.0497 same questions for both, clips picked by one fixed rule, not a fact-check https://t.co/m8u4ALl6Me
0079X postsยทTools & appscost$0.0497time415 ms medianOriginal source โ†—
Ted KalawTed Kalaw@tedkalaw๐•
using jev and the sick new markdown renderer in @pidotdev , i made a pi-extension that lets you toggle how much detail you want in the agent output. this was motivated by my inability to understand what opus 5 was getting at https://t.co/PE4HQhc84T
0078X postsยทTools & appsOriginal source โ†—
Greg PstruchaGreg Pstrucha@grichadev๐•
these are results of using jev on one of our security pipelines. we already have to use smaller (and dumber) models to make it economic and this model does it over 5x cheaper, faster and while maintaining much higher accuracy. i don't normally hype over new model releases but that's the first one that actually impressed me. good job @typesafeai
0062X postsยทTools & appscostover 5x cheaperOriginal source โ†—