Browser-Native AI Proctoring System
Budget: $25.0 - $47.0
HOURLY / FULL_TIME
⭐ 4.88 (7)
Pakistan
golang, python, web-application
Bevorzugte Qualifikationen
- Erfahrung: Experte
Loom video preferred.
We're building a browser-native AI proctoring platform for online exams, technical interviews, and certification testing. No desktop agent, no video upload, everything runs client-side in the browser.
Core features needed:
- Real-time gaze tracking using MediaPipe face landmarks (iris position, zone classification into center, peripheral, away)
- Multi-face detection with sub-second alerting when a second face enters frame
- Tab-switch and window-blur detection using the browser Visibility API
- Live proctor dashboard showing active sessions and real-time flags via WebSocket
- Post-session integrity report with a 0-100 score, gaze distribution, and flag timeline
- Candidate-facing exam interface and a separate proctor/admin dashboard
Tech stack:
- Frontend: MediaPipe (face mesh/iris), WebRTC, WebSocket client
- Backend: Go for the real-time WebSocket/session service, Python/FastAPI for any ML-adjacent processing or scoring pipeline
- Twilio or equivalent for session infrastructure if needed
What to include in your proposal:
- Relevant experience with MediaPipe, browser-based computer vision, or proctoring/monitoring systems
- Whether you've built real-time WebSocket dashboards before
- A rough breakdown of how you'd approach the gaze zone classification and scoring logic
- Timeline and milestone-based pricing preference (fixed price or hourly)
This is a build from a working reference design, not from scratch conceptually, so ability to move fast and match an existing UX pattern matters more than novel research.
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