Talentmate
India
19th August 2026
2608-59941-2
Bolna is Voice AI infrastructure built for India - and now for the world. We help businesses deploy intelligent voice agents that can call, converse, and convert in any language, at scale. From collections to customer support to sales, our agents handle millions of conversations so humans don’t have to.
We’re a YC F25 company, backed by General Catalyst, with 1,050+ paying customers and growing fast. Our team of ~25 is based in Bengaluru.
Every voice AI agent Bolna deploys makes real-time judgment calls - when to speak, when to go silent, when a customer is done talking, when to hand off. We’re building automated systems to grade these calls at scale, using LLMs as judges of call quality. But before you trust a model’s judgment, you verify it against a human’s.
That’s this role. You’ll listen to real calls, annotate what actually happened, and check whether our automated systems - LLM-as-judge evals and quantitative signal detection - got it right. It’s precise, high-attention work, and it sits right at the center of how we know our voice agents are actually working.
This is an internship role for someone early in their career who wants hands-on exposure to how a voice AI company builds trust in its own AI.
Annotation
Listen to and annotate real customer calls - transcription review, issue tagging, labeling - using tools like Label Studio
Follow (and help sharpen) annotation guidelines for a multilingual environment (Hindi, English, Hinglish, )
Verifying LLM-as-Judge Evaluations
For calls flagged by our automated eval pipeline, verify whether the model’s call was actually correct - for example, confirming whether a detected barge-in (agent/customer talking over each other) genuinely happened by listening to the audio
Mark agreements and disagreements clearly, with reasoning, so we can measure and improve model accuracy over time
All tools needed for this will be provided
Verifying Quantitative Measures
Check system-flagged quantitative signals against the actual call - e.g., confirming whether an “agent interruption” the system detected really occurred at that timestamp
Flag false positives/negatives so we can tighten detection logic
Help identify edge cases that current rubrics or detection logic don’t handle well
Inspecting Calls & Surfacing New Issues
Regularly inspect calls beyond flagged ones to spot new or emerging issues our rubrics and detection systems dont yet cover
Bring these patterns back to the team so rubrics, prompts, and detection logic keep improving
Must-have
Strong attention to detail and the patience to do focused, high-precision work across many calls
Multilingual comfort preferred - Telugu, Tamil, Kannada, Marathi, Gujarati, or Bengali, in addition to English/Hindi
Comfortable learning new tools quickly - Label Studio, dashboards, internal QA apps
Genuine curiosity about AI and voice AI - you want to understand why a call was flagged, not just complete a checklist
Good to have
Any prior exposure to data annotation, labeling, or QA work
Familiarity with spreadsheets/basic SQL or comfort reading dashboards (e.g., Metabase)
Background in linguistics, call center operations, or content moderation
This is designed as an entry point, not an endpoint. Based on where you show strength, we’ll shape what comes next:
Strong rigor and consistency in annotation → QA Lead / Annotation Lead
Curiosity about agent logic and how voice AI actually works → Forward Deployed Engineer track
Strong pattern recognition and rubric thinking → Data/Eval Engineer, Voice AI Analyst
We’ve seen people join in QA and grow into much broader voice AI builder roles - this is meant to be a real foot in the door, not a dead-end task.
Direct exposure to how a fast-growing AI infra company builds trust in its own models
Real ownership over a function (call quality) that directly affects what customers see
Fastest way to learn the guts of voice AI - ASR, agent logic, eval pipelines - from the ground up
Bengaluru office, in-person team collaboration
| Role Level: | Entry-Level | Work Type: | Full-Time |
|---|---|---|---|
| Country: | India | City: | india ,Delhi |
| Company Website: | https://www.bolna.ai | Job Function: | Call Center Operations |
| Company Industry/ Sector: |
Technology Information and Media | ||
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