Read & learn
Written guides.
Understand Jev, one idea at a time. Walkthroughs, recipes, and writeups — our notes first, the original next.
Learn, build, and play with Jev — from deep technical guides to creative experiments.
Read & learn
Understand Jev, one idea at a time. Walkthroughs, recipes, and writeups — our notes first, the original next.
Watch & learn
See an idea take shape. Tutorials, demos, and deep dives, organized by topic and credited to their creators.
Make & explore
See what builders made with Jev. Games, tools, repositories, articles, and more — traced to their sources.

Every category, from games and tools to repositories and writeups, traced to a primary source.
Same ideas.
Different paths.
This is the full registry, not just the featured picks. Figures like speed, cost, and stars are maker-reported or captured snapshots, not JevMade measurements.
393 experiments · showing 1–60
QuantDinger can ask Jev to review a live trade entry before the order proceeds.
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GenOffice can ask Jev to reorder local search results by how well each document excerpt matches a query.
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Reads supported Android chat screens, judges conversational intent, and offers replies that users may fill before sending manually.
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An AI stock-research team that can use Jev to rate an investment and flag risks before writing its report.
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Kuest asks Jev to spot unclear prediction-market rules and rank useful context for a draft.
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A trading bot asks Jev what to do on every Monad block.
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Type one thought and watch the text box morph into an event card, checklist, conversion, calculation, or other fitting tool.
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Uses local OCR and Jev to judge Windows chat messages, rank three drafted replies, and fill one without sending it.
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Shows intent, risk, and ranked reply suggestions beside supported macOS chats while keeping message sending under user control.
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Identify IRS forms and schedules from their text with Jev.
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Shortlist coding approaches, score them in a loop, and inspect the gates surrounding an LLM implementation run.
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Point DocJev at a PDF and a list of categories you wrote in plain English, and Jev names the category or marks where each new document starts.
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Jobseek asks Jev to sort batches of listings by a job seeker's plain-language preferences, showing accepted and rejected matches in separate groups.
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A browser video editor whose Jev-powered Director turns plain-language requests into structured timeline operations.
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Notra turns material from your work into publishable content.
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Provides a visual editor for connecting Jev decision nodes into runnable workflows.
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A web playground compares parallel and one-shot LLM judgments with a compatible open decision-model backend.
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Float a translucent panel over WeChat or QQ to see intent, risk, urgency, and Jev-ranked reply candidates.
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Search multilingual text by meaning, with grep-like thresholds and AND, OR and NOT combinations over exact source lines.
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Prism shadows deterministic Solana liquidity rules with Jev judgments about strategy, toxic flow, recovery, and market stress.
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Lurk uses Jev to find Reddit posts that show useful buyer intent for a product.
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Crawls a site from its homepage and uses Jev to judge page-level SEO findings for downloadable reports.
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Read English aloud and see word-level mismatches plus passage-level meaning judgments as the transcript settles.
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Find sponsor reads in YouTube captions or live transcription, then skip only the time ranges controlled by the extension.
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Watch Gmail previews cross a Jev checkpoint and drop into reply, update, promotion, sales, or spam trays.
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Hear It Fresh asks Jev to find themes in song lyrics so listeners can include or exclude them from a playlist.
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Screens datasets with Jev, separates keep, review, and reject records, then trains and compares a configured language model.
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Long-press a WeChat message to see its likely intent, emotion, urgency, and a suggested reply posture in a local popup.
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A video-editing tool that scores each spoken sentence with Jev and renders the results as a live 16:9 meter.
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Describe a startup by purpose, logo appearance, or visible text and watch matching YC logos rise from a physics pile.
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Control Ableton Live in English or Japanese from a short typed or dictated command, with Jev choosing among only currently valid targets and actions.
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Build a systematic-review table from verbatim evidence in papers rather than model-written answers.
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A SillyTavern extension measures chat with custom Jev sensors, then applies matching rules to narration, lists, rerolls, or scripts.
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Filter an X timeline with plain-language rules, per-author overrides, and correction feedback using Jev or a chat model.
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Say “Hey Jev” to a Mac and watch a compact assistant route commands, questions, timers, and reminders.
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A Discord bot that uses Jev to filter spam and scam links, escalate repeat offenses, and help moderators review member history.
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Describe a visual world in one sentence and let Jev turn it into a coordinated dashboard design system.
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Reveal emotional probabilities, implied meaning, and communication advice beside WeChat messages in an Android overlay.
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A Rust tool that uses Jev to classify Git commits by change type, bug-fix status, and security relevance.
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Scores social posts for hook strength and lets creators compare rewrites inside a Chrome extension.
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Builds knowledge-graph relations from extracted evidence and typed Jev decisions, retaining provenance for each edge.
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A social-deduction game where Jev chooses which bot speaks next and separately screens text written by human players.
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Talk to a macOS desktop app that combines realtime voice conversation with optional Jev-guided browser actions.
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Suggests internal links by judging candidate target pages and choosing honest anchor phrases already present in the copy.
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A Jev-powered tool for searching codebases by meaning.
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Write down a dilemma, let an LLM arrange the possibilities, then open a book-like answer chosen by Jev.
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Scroll X while behavioral labels and warning chips appear beneath posts before they enter view.
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Navigate a YouTube transcript by topic, chapter, and semantic heat map without asking Jev to rewrite it.
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Chooses and gates small reusable programs from natural-language requests, asking before irreversible actions.
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Read a visible WeChat conversation and see Jev’s judgments about intent, emotion, urgency, and how to respond.
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Create inbox rules that use Jev probabilities to tag, move, flag, or notify on matching messages.
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Drives a mobile app through a QA task and finishes with a clear pass, fail or incomplete result.
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Adds semantic predicates to PostgreSQL queries, evaluating them outside the database and folding typed judgments back into results.
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Deletes Telegram group spam only when Jev’s probability clears a configured threshold, leaving messages untouched on failures.
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A spatial reference browser for creators, with source-linked collections, metadata highlights, and local Jev query choices.
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Jev chooses instruments, harmony, and bar patterns for a composition you can refine in a piano roll and export as MIDI.
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Compare six small demos of Jev handling routing, triage, inbox classification, filtering, and scoring.
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Stamp low-quality X posts with a translucent STOP and mark promotions already identified by the platform as AD.
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Screens each morning’s arXiv feed against your interests, then publishes the strongest matches with per-interest probabilities.
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A Python trading bot that uses Jev for market decisions and includes backtesting support.
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Jev, briefly
A chat model generates text token by token and hopes you parse it. Jev never generates a word. Your code sends the state of the world plus typed questions; Jev returns every answer in one parallel pass — typed values with calibrated probabilities and a confidence score your code can trust. About 70–500 ms end to end, $0.042 per million input tokens, output free. Trained with what TypeSafe calls Reinforcement Learning for Calibrated Decisions.
You define the options. Jev returns the chosen option, a probability for every option, and a confidence. The workhorse of routing, agents, and games — the answer space is always legal, so there is nothing to parse and nothing to hallucinate.
You describe ordered levels — say trivial / normal / critical. Jev returns the level, the probability of each, and a confidence. Scores turn fuzzy judgment (“how severe is this log line?”) into a number-free decision your code can branch on.
You assert a statement; Jev returns the probability that it is true — a noul. Moderation, verification, guardrails, “does this diff actually fix the bug?”: one question, one calibrated probability.
Official material lives at typesafe.ai and docs.typesafe.ai. JevMade is an independent community registry — not affiliated with or endorsed by TypeSafe AI.
Recurring lessons
Games, drones, trading bots, and browser agents all converge on the same loop: serialize the state, ask one decisive question, act, repeat. Jev’s latency makes the loop feel instant — the model lives inside the control loop, not outside it.
The answer says what; the confidence says whether to act. The most reliable entries threshold on confidence to route edge cases to a slower model or a human — automation with an honest escape hatch.
Makers rarely ask Jev to pick from everything. Local tactics prune 225 gomoku moves to ~40; DOM filters turn a page into an element table; code narrows options, Jev judges within them.
A recurring split: Jev makes every decision cheaply and instantly, and a small LLM is only invoked when a human-facing string must actually be written. Decision and generation are separate budgets.
Send the link — repo, live demo, post, or video — plus a line on what it does and which primitives it uses. Every entry is verified against its primary source before it ships.
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