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Safety First

AI Ethics & Safety Standards

How we build responsible, accurate, and unbiased Artificial Intelligence for the classroom.

Building AI for education carries a higher responsibility than other fields. A wrong answer in a creative writing prompt is an annoyance; a wrong answer in math is an educational failure. Here is how we ensure safety and accuracy.

🧠

Combating Hallucinations

Generative AI is prone to “making things up.” To solve this, MathGPT uses a Neuro-Symbolic Architecture.

  • Step 1: The LLM parses the natural language.
  • Step 2: A deterministic math engine calculates the result.
  • Step 3: The AI compares its output against the engine before responding.
🔒

Student Data Privacy

You are not the product. We strictly adhere to student data protection principles.

  • We do not use user inputs to train 3rd-party advertising models.
  • We do not build shadow profiles of students.
  • Chat history is stored locally or anonymized for quality assurance.
🌍

Bias Mitigation

Math is universal, but word problems can carry cultural bias. We rigorously audit our training datasets to ensure:

  • Diverse representation in word problem names and scenarios.
  • Culturally neutral context in financial and social examples.
  • Accessibility-first output formatting (screen-reader friendly).
👩‍🏫

Human-in-the-Loop

Automation has limits. We maintain a review board of mathematics educators who:

  • Regularly audit random samples of AI conversations.
  • Manually correct recurring errors in the model.
  • Set pedagogical guidelines for how the AI explains concepts.

System Safety Status

Our models undergo nightly automated red-teaming tests to ensure they refuse inappropriate non-math requests.

100% Pass Rate

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