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Best open-source alternatives to JEFIT

Open-source, self-hosted alternatives to JEFIT.

JEFIT is a closed-source gym workout logger with a large exercise library and shared routines. It has an ad-supported free tier and a paid Elite tier. The alternatives listed here are open-source and self-hosted. Your training history stays on your server.

6 alternatives listed
  1. 1wger logo
    7.0k
    GNU Affero General Public License v3.0Open Source — No Paywall

    wger is a free and open source workout and fitness manager aimed at people who want to organize training, nutrition, and progress tracking in one system. It combines routine planning with tools for logging body weight, diet plans, measurements, and photos, and it also includes a collaborative exercise wiki and multilingual support. The project is designed for both individual use and shared environments, as indicated by its multi-user gym management features. It can be self-hosted with Docker Compose and offers a REST API for integrations and automation. In addition to the web application, it is available through mobile and desktop distribution channels such as Android, iOS, F-Droid, and Flathub.

    Multi-UserDockerDocker ComposeFlatpak

    Features:

    • custom workout routines
    • automatic weight progression
    • diet tracking
    • body weight tracking
    • custom measurements

    +5 more

  2. Wingfit is a minimalist fitness application designed for people who want to plan training sessions, keep track of personal records, and incorporate smartwatch data into their routine. It is presented as a privacy-first, self-hostable project, with the README emphasizing that users keep control of their data and can inspect, modify, and contribute to the code. The project appears aimed at self-hosters and fitness enthusiasts who want a lightweight web app rather than a full commercial platform. It is deployed with Docker or Docker Compose, uses a FastAPI backend with SQLModel and SQLite, and includes configuration guidance for OIDC authentication. A public demo is available, and the README shows screenshots of planning, statistics, programs, and other core UI views.

    No TelemetryDockerDocker Compose

    Features:

    • workout planning
    • personal record tracking
    • smartwatch data integration
    • self-hosting
    • OIDC authentication
    Auth:oidc-sso
  3. MIT LicenseOpen Source — No Paywall

    Workout.cool is a self-hosted fitness coaching platform built to help users create workout plans, monitor progress, and explore an extensive exercise library. It is presented as a modern replacement for an earlier abandoned project, with an emphasis on community ownership and ongoing maintenance. The project appears aimed at developers and fitness enthusiasts who want a customizable coaching app they can run locally or deploy themselves. The README describes a Next.js-based application organized with Feature-Sliced Design, and it includes a workflow for importing exercise data from CSV files so the database can be populated with sample or custom exercises. The installation instructions support both Docker-based setup and a manual development path using Node.js, pnpm, and PostgreSQL.

    DockerSource

    Features:

    • workout plan creation
    • progress tracking
    • exercise database
    • detailed exercise instructions
    • video demonstrations

    +3 more

  4. 4openGym logo
    1.6k
    GNU Affero General Public License v3.0Open Source — No Paywall

    openGym is a self-hosted fitness tracker focused on gym training and body-weight progress. It is designed for people who want to keep workout data on infrastructure they control rather than on a third-party platform. The README positions it as a phone-friendly, installable web app that supports passkey sign-in, syncing across devices, and offline use. The project centers on planning weekly routines and logging workouts in detail. It supports guided sessions, exercise libraries with demos, custom exercises with media, workout history, progress tracking, and statistics such as charts and PRs. It also includes training features like supersets, warm-up sets, timed exercises, rest timers, plate math, and editable past sessions, making it useful for lifters who want both workout planning and long-term record keeping.

    No TelemetryOffline CapableMulti-UserDockerDocker Compose

    Features:

    • Body-weight tracking
    • Weekly workout planning
    • Guided workouts
    • Animated exercise demos
    • Workout history and progression

    +5 more

    Auth:local
  5. GNU Affero General Public License v3.0Open Source — No Paywall

    LiftTrace is a self-hosted weightlifting tracker designed for athletes, coaches, and gym users who want to keep workout data on their own hardware. It runs in a single Docker container and provides a browser-based PWA plus a native Android app. The project emphasizes local ownership of data, with workouts, photos, and other records stored in a SQLite database and uploads directory on the user's server. The application supports multiple user roles and OIDC-based single sign-on, making it suitable for shared environments such as teams or coaching setups. Users can log sets and reps, follow training programs, review statistics and personal records, store progress photos, import history from other fitness apps, and optionally use an AI coach. It also includes integrations for exercise libraries and music/radio services, while remaining self-hostable and free of telemetry or subscriptions.

    No TelemetryCloud OptionalOffline CapableMulti-UserDockerDocker ComposeBinary

    Features:

    • Workout and set logging
    • Programs and templates
    • Exercise library
    • Statistics and PR tracking
    • Progress photos

    +5 more

    Auth:oidc-ssolocal
  6. MIT LicenseOpen Source — No Paywall

    GymCoach is a self-hosted training tracker designed for people who want detailed workout logging, progress analysis, and coaching features without sending their training data to a hosted SaaS. It stores training history in the user’s own Postgres database and supports multi-user use with per-user data isolation. The product also emphasizes local control over data and a bring-your-own-model approach for AI assistance. The app combines workout logging with training analytics, program management, and an AI coach. Users can log sets, track strength and volume trends, manage exercises and equipment, import cardio and wearable data, and generate or discuss training plans through Anthropic or OpenRouter models. The README also describes a live demo, PWA offline logging, and an MCP connector for external agents that can inspect or modify training data with user permission.

    Cloud OptionalOffline CapableMulti-UserDockerSource

    Features:

    • fast set logging
    • rest timer
    • plate-loading calculator
    • warm-up ramp calculator
    • weight picker

    +5 more

    Auth:local

What to look for in a JEFIT alternative

- Exercise library: check how many exercises ship with the tool and whether you can add your own. - Routines: look for saved routines and a way to share or import them. - Progress tracking: confirm that the tool charts weight and reps over time. - Mobile use at the gym: most self-hosted tools are web apps. Test how well the tool works on a phone with poor reception.