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Agent workflows

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40 videos · showing 25–40

Jev AI getestet: Die Wahrheit über die neue Art der KI!

Zeldo explains Jev AI by TypeSafe, testing it as a decision layer for pre-filtering and model routing. He explores how evaluating set options directly cuts token overhead in agent workflows compared to standard chat LLMs, while comparing Jev to open-source alternatives like NanoJev and Bespoke Nimble.

Duration: 8 minutes 37 seconds.

Jev AI Just Made AI Agents 10X Faster!

Julian Goldie explains TypeSafe AI's Jev model, detailing how its no-text, constrained-choice architecture handles classification and routing tasks. He demonstrates parallel batching and confidence-threshold gating while noting key vendor evaluation caveats.

Duration: 17 minutes 49 seconds.

Jev Claude Code: Quick Setup

MG explains TypeSafe's Jev model as a dedicated decision-making architecture rather than an LLM. The video demonstrates using Jev alongside Claude Code to route requests, filter unnecessary MCP tool contexts, and enforce execution guardrails, while critically addressing marketing hype and the need for rigorous accuracy evaluation.

Duration: 22 minutes 11 seconds.

Is This the End of LLMs? Meet Jev AI

This video breaks down the architectural contrast between generative LLMs and decision-oriented models like Jev. It examines how agent pipelines can replace monolithic LLM generation with specialized scoring, deterministic code, and routing.

Duration: 10 minutes 36 seconds.

I tested the new JEV Model... and it's insane

Albert Olgaard tests categorical choices, binary criteria, and rating scales in the TypeSafe console. He then combines Jev with Claude for task-complexity routing and a small guardrail demonstration that checks drafted replies for internal prompt disclosure.

Duration: 8 minutes 21 seconds.

Jev Trader GitHub Tutorial: Build a Subsecond AI Trading Bot

Alex Hitt demonstrates deploying the open-source Jev Trader bot on Monad testnet. The walkthrough covers provider credentials, separate RPC paths for reads and writes, network timing, decision telemetry, and dry-run quote placement before live orders.

Duration: 6 minutes 32 seconds.

I Paired Jev With Astra. Here’s What Changed.

Hunter Bohm evaluates TypeSafe's Jev model, explaining its parallel structured schema scoring and non-generative nature. He explores community use cases like dispatch routing and computer use, then presents hybrid tests pairing Jev with Astra to offload code review, email classification, and browser steps to cut agent runtime and API costs.

Duration: 12 minutes 39 seconds.

Jev + Claude Code = The Cheapest Agentic Coding Loop Yet

Ray Amjad explains TypeSafe's Jev model as a fast System 1 probability classifier. He demonstrates its three primitives—Noul, choice, and score—in the web console before exploring agentic patterns like parallel browser testing, dynamic skill selection, qualitative linting, and multi-angle PR review paired with System 2 frontier models.

Duration: 27 minutes 28 seconds.

JEV: Dieses neue KI-Modell ist der WAHNSINN!

Alex Sprogis explores TypeSafe AI's Jev model, explaining its parallel structured decision mechanism versus text-generating LLMs. He reviews reported community experiments in chess, UI automation, and high-throughput email classification, while offering critical perspective on vendor hallucination claims and strategic limitations.

Duration: 9 minutes 24 seconds.

Jev Explained: Demos and Use Cases

CJ explains TypeSafe AI's Jev model as a fast System 1 classifier rather than a generative LLM. He demonstrates its API schema, reviews community implementations in routing and moderation, and builds an LLM-free chatbot executing deterministic tool calls.

Duration: 17 minutes 50 seconds.