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ai-ethics

Here are 733 public repositories matching this topic...

🌟 A curated collection of free, high quality AI tools 🤖, APIs 🔗, datasets 📊, and learning resources 📚 covering machine learning 🧠, deep learning 🧩, generative AI 🎨, NLP 💬, and data science 📈. Designed to help developers 👩‍💻, researchers 🔬, and creators ✨ explore and build with AI faster ⚡.

  • Updated May 21, 2026

501(c)(3) nonprofit delivering ethical, inclusive, multilingual AI tutoring for underserved learners — low-income, rural, multilingual & neurodiverse students. 1,500+ students reached across 7 languages. Source code for aiethos.org.

  • Updated Sep 20, 2026
  • PHP

International student-led org expanding ethical & accessible AI: seminars, global ambassador program, 50+ members, collaborations in US & Taiwan. Founded to build the next generation of responsible AI leaders.

  • Updated Sep 20, 2026
  • HTML

Portfolio of capstone projects from AI & Technology, Data Science, AI Internship, Machine Learning and AI Humanities Honors. CNN pneumonia detection on chest X-rays (>90% accuracy), healthcare EDA, diabetes risk prediction and AI ethics research. Python, scikit-learn, TensorFlow/Keras.

  • Updated Sep 20, 2026
  • Jupyter Notebook

A long-form essay exploring the philosophy of minimalist AI, how future intelligent systems can be calm, ethical, and invisible. Inspired by calm technology, design minimalism, and cognitive science, Quiet Machines envisions a world where the best technology listens more than it speaks.

  • Updated Nov 2, 2025

An in-depth exploration of the rise of human-centered, interactive machine learning. This article examines how Streamlit enables collaborative AI design by merging UX, visualization, and automation. Includes theory, architecture, and design insights from the ML Playground project.

  • Updated Nov 3, 2025

A narrative and technical exploration of data authenticity through the four pillars of synthetic data realism, Fidelity, Coverage, Privacy, and Utility. This thought-leadership piece combines storytelling, mathematics, and code to explain how these metrics define the ethical and functional “soul” of data in AI systems.

  • Updated Nov 14, 2025

A long-form article and practical framework for designing machine learning systems that warn instead of decide. Covers regimes vs decimals, levers over labels, reversible alerts, anti-coercion UI patterns, auditability, and the “Warning Card” template, so ML preserves human agency while staying useful under uncertainty.

  • Updated Dec 20, 2025

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