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Aural is an AI interview platform that conducts voice interviews, chat interviews, and video interviews at scale. Get automated insights, transcripts, and analytics to make better decisions.

We help programmers to grow professionally

Website, pricing, platforms and company facts side by side.
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| Website | aural-ai.com | selfcommit.dev |
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| Company | Startup from Hong Kong · 1 - 9 employees · 2026 | — |
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In their own words, as submitted to SaaSHub.


Aural — AI-Powered Interviews for Hiring, Research & Practice Aural conducts structured, adaptive interviews at scale through chat, voice, or video — so you can focus on the insights that matter. How It Works Design — Describe what you want to learn and AI generates a complete interview, or...
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Aural — Automate Interviews with AI
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As answered by people managing Aural AI and Selfcommit.dev.
Aural AI's answer
Aural is built around the AI interviewer. The AI doesn't just transcribe or score — it runs the entire conversation. It asks questions, listens to responses, follows up with relevant probes, and adapts its approach based on what the candidate says. After the interview, it generates per-competency scores with written explanations, key insights, and theme detection. You describe what you need in plain language, and the AI generates the complete interview structure.
Aural AI's answer
Most competitors focus on just one modality — either async video or text-based assessments. Aural offers all three (chat, voice, video) powered by the same adaptive AI engine, so teams don't need to stitch together multiple tools. It includes built-in analytics with AI-generated summaries and scoring, supports multiple question types (open-ended, MCQ, rating, coding, whiteboard), and offers a generous free tier with 5 interviews per month. It's also one of the few platforms with native bilingual support (English and Chinese) and a full anti-cheating suite including tab monitoring, paste blocking, and multi-screen detection.
Aural AI's answer
Aural serves three main audiences: (1) hiring teams and recruiters who need to screen technical and non-technical candidates at scale without scheduling bottlenecks, (2) researchers and product teams conducting user research, customer discovery, or feedback collection interviews, and (3) individuals preparing for interviews who want realistic AI-powered mock practice with coaching and scoring. It's designed for anyone who needs structured, conversational interviews but can't afford the time or cost of doing them all live.
Aural AI's answer
Aural was born from a simple frustration: conducting quality interviews doesn't scale. Whether you're a startup hiring your first engineers or a research team running 50 discovery calls, the bottleneck is always the same — live interviews take too much time. Aural was built to solve this by creating an AI interviewer that feels like a real conversation, not a survey. The platform was designed from day one to support voice-first interactions, because the best insights come from natural dialogue, not multiple-choice forms.
Aural AI's answer
Our AI conversation engine leverages state-of-the-art large language models for adaptive interviewing — dynamically adjusting follow-up questions, tone, and probing depth based on candidate responses. For voice interviews, Aural uses cutting-edge real-time speech-to-speech models that enable natural, low-latency spoken dialogue. This is powered by a custom WebSocket relay server that streams audio bidirectionally, combining real-time automatic speech recognition with neural text-to-speech synthesis to create a seamless conversational experience that feels like talking to a real interviewer.
The interview UX is designed around minimizing friction for candidates: a guided onboarding flow with device checks (camera, microphone, screen sharing), a clean split-panel layout with the question and workspace on one side and the live transcript on the other, and contextual tool switching between chat, code editor, and whiteboard — all without leaving the interview page. The anti-cheating system runs transparently in the background, monitoring tab focus, clipboard activity, and display configuration without disrupting the interview flow.
Post-interview analysis uses multimodal AI to generate structured summaries, per-question scoring against custom rubrics, and highlight extraction from transcripts — turning hours of raw conversation into actionable insights in seconds.
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