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I’ve been testing Qoder, and the biggest difference I noticed is that it feels less like asking an AI to write code and more like handing an AI agent an actual task. I started from Qoder’s new task screen, described the outcome I wanted, selected my workspace, model, and...

251,390 Aufrufe • vor 9 Tagen •via X (Twitter)

19 Kommentare

Profilbild von Ethan Cole AI
Ethan Cole AIvor 9 Tagen

Try Qoder free with 600 Credits 👇 300 from the Pro trial + 300 with my code C46T6F.

Profilbild von NeuraFlow AI
NeuraFlow AIvor 8 Tagen

Qwen3.8-Flash at 0x credits is definitely worth testing before September 30

Profilbild von Lacoste AI | Tools
Lacoste AI | Toolsvor 8 Tagen

Agentic coding tools are getting seriously impressive lately

Profilbild von Olivia Reed
Olivia Reedvor 8 Tagen

600 credits for new users is actually pretty generous

Profilbild von Erina | AI Tools & News
Erina | AI Tools & Newsvor 9 Tagen

This is the shift: stop prompting for code, start assigning work.

Profilbild von Md. Robius Sany
Md. Robius Sanyvor 9 Tagen

Awesome share

Profilbild von David
Davidvor 9 Tagen

Excellent share thanks

Profilbild von COMMON AI
COMMON AIvor 9 Tagen

Excellent Share

Profilbild von Antonio Costa | IA
Antonio Costa | IAvor 8 Tagen

This feels much closer to delegating work than just prompting an AI

Profilbild von Chloe Wells
Chloe Wellsvor 9 Tagen

Thanks it’s really nice share

Profilbild von Arcane Matrix | AI
Arcane Matrix | AIvor 9 Tagen

Qoder is insane

Profilbild von Ai With Piyas
Ai With Piyasvor 9 Tagen

Excellent share

Profilbild von Onil Coder
Onil Codervor 9 Tagen

Appreciate you sharing this.

Profilbild von Theo Builds AI
Theo Builds AIvor 8 Tagen

The ability to pause, redirect, or take over is exactly what these coding agents need

Profilbild von Nova IA
Nova IAvor 8 Tagen

Being able to watch the agent work and step in when needed is a big plus

Profilbild von Justin Brave💡
Justin Brave💡vor 9 Tagen

Impressive work. Thanks for sharing your perspective.

Profilbild von SynapseOps AI
SynapseOps AIvor 8 Tagen

Seeing the planning and execution process makes it way easier to trust the result

Profilbild von rockcovenant
rockcovenantvor 8 Tagen

Do my dzs

Profilbild von Alex Carter AI
Alex Carter AIvor 8 Tagen

The verification step at the end is probably the part I like most

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I wanted to see if an AI agent could take one goal all the way to a finished artifact. I gave Qoder a weekly competitor-tracking task. I started on the task screen, selected my workspace, left the model on Auto, set permissions, and sent the outcome instead of a step-by-step prompt. Qoder read the context and began planning. Rather than one generic research pass, it ran subagents for Cursor, Windsurf and GitHub Copilot in parallel. I watched them check public updates and bring their findings back into the main task. The work was visible: planning, tool calls, terminal commands, file changes and progress updates. It did not feel like another chat answer. It felt like watching a task move through an actual workflow. The final artifact was competitor-weekly-2026-09-22.md It summarized the week's highlights and included sources and caveats, including where public evidence was limited. That made the output reviewable: I could check the sources, question the conclusions, and decide what to do next. That is the part I care about. Qoder is a desktop AI agent you can hand an outcome as a task. It reads context, plans, uses tools, executes and verifies. You can watch, adjust, pause or take over. One goal → planning → parallel research → terminal work → verified Markdown report. In the model picker, Qwen3.8-Flash was showing 0.0x Credits through September 30, so that option was available at zero cost during the offer. If you want to try it, Qoder has a 14-day Pro trial with 300 Credits. Sign up first using this link at before you download. That adds another 300 Credits, for 600 total.

Nelly;

159,865 Aufrufe • vor 13 Tagen

I wanted to see if an AI agent could take one business task all the way to a verified artifact, so I gave Qoder a real one. In General mode, I selected the Business Data Analysis workspace, chose Qwen3.8-Flash from the model picker, enabled full access, and asked it to analyze every file in the folder and build an executive performance report for Jul 1-Sep 20, 2026. The brief included KPIs, revenue, gross profit, margins, monthly trends, regional and product performance, target attainment, marketing efficiency, customer mix, weighted CRM pipeline, anomalies, and charts. Qoder planned the task, read the source files, and ran terminal commands. It hit real issues: a broken NumPy environment, old folder paths, inaccurate claims, and chart label collisions. It switched to a working Python stack, repaired the scripts, corrected a "2x October target" claim to September, fixed a "2:1" product-tier claim that was actually 1.5:1, and re-ran the validate -> metrics -> charts -> report pipeline. The Browser Use step was the proof: Qoder opened the generated HTML, captured screenshots, and checked that the charts rendered correctly. The final report showed $450,635 net revenue, $311,262 gross profit, 69.1% gross margin, 937 orders, and $1.101M weighted pipeline from 120 open opportunities. That is the difference between a chat answer and an agent workflow: I could inspect the actions, challenge the output, and verify the result. Qwen3.8-Flash was at 0.0x Credits through Sep 30. Sign up first using this link at before you download. You will get 600 Credits: 300 from the trial and 300 from my code.

JAYDEN™

158,041 Aufrufe • vor 8 Tagen