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@SKaiNET-developers

SKaiNET Developers

SKaiNET

SKaiNET is an open-source multiplatform AI framework that helps developers build apps with local, on-device AI — without having to choose between developer simplicity and native performance.

It is built around a device-first prototyping philosophy: developers should be able to experiment directly on the devices where their AI experiences will actually run, using real hardware constraints, local execution, and platform-native capabilities from the start.

SKaiNET gives developers a clean, practical way to work with data, neural networks, tooling, and compilation across platforms, while aiming for performance close to the hardware. The goal is not just to run AI locally, but to make local AI development accessible, portable, and fast enough for real-world apps.

  • Built entirely in Kotlin for a seamless developer experience
  • Focused on exceptional efficiency and strong portability
  • Provides a user-friendly API that simplifies building and experimenting with ML models
  • Integrates smoothly with existing Kotlin and JVM-based projects
  • Designed to empower software developers, not only data science specialists
  • Balances power, flexibility, and accessibility for next-generation ML development

Popular repositories Loading

  1. SKaiNET SKaiNET Public

    SKaiNET makes local AI practical for developers: simple to build with, multiplatform by design, and optimized for native performance without compromises.

    Kotlin 31 11

  2. SKaiNET-examples SKaiNET-examples Public

    Sample applications using skainet library

    HTML 3 1

  3. SKaiNET-transformers SKaiNET-transformers Public

    Multi-model LLM inference and agentic tool calling for the JVM, Android, and Kotlin/Native built on the SKaiNET engine.

    Kotlin 2

  4. miKrograd miKrograd Public

    Forked from karpathy/micrograd

    Kotlin port of a tiny scalar-valued autograd engine and a neural net library with PyTorch-like API

    Jupyter Notebook 1 2

  5. skainet-notebook skainet-notebook Public

    Empower your data science workflows with Kotlin's type safety and expressiveness—now in Jupyter notebooks.

    Jupyter Notebook 1

  6. gradienttracer gradienttracer Public

    Python library for generating reference test data for differentiation using PyTorch

    Kotlin

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