Founding ML Engineer

BookMyMentor

India

On-site

INR 4,000,000 - 7,000,000

Full time

24 hours ago
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Benefits offered by this job

Competitive package
meaningful ESOP for early ownership
Health Insurance

Job summary

Bolna is building a Voice AI platform in India and seeks a Founding Machine Learning Engineer to own end-to-end model lifecycle, from data to deployment. You will design pipelines, fine-tune models, and establish evaluation standards while shaping the ML architecture and roadmap.

You will be among the first ML team members, impact product strategy, and help scale thousands of concurrent calls with real-time constraints and data-driven decisions.

Qualifications

  • 3+ years of hands-on ML experience with real-world model training.
  • Strong Python and PyTorch fundamentals with distributed training exposure.
  • Experience designing data pipelines for collection, cleaning, labeling and augmentation.
  • Rigorous evaluation mindset; build evals before trusting models.
  • Speech model experience plus real-time/latency optimization is a plus.
  • Bias toward shipping; production-ready mindset.

Responsibilities

  • Build the data engine - design pipelines to source and clean conversational voice data across Indian languages, accents, and telephony conditions.
  • Fine-tune models that ship - train models to improve accuracy, speed, and reliability across use-cases.
  • Define what good means - build evaluation datasets and benchmarks for transcription accuracy, voice naturalness, and latency.
  • Ship to production - deploy models in a latency-sensitive, high-volume system and monitor in the wild.

Skills

ML engineering
Python
PyTorch
Data pipelines
Model evaluation
Multilingual ML
Latency optimization
Speech/ASR
Production ML

Tools

LoRA
QLoRA
DPO
RLHF

Job description

At Bolna, we’re building tools that change the way teams leverage Voice AI.We’re looking for a Founding Machine Learning Engineer to own the end-to-end lifecycle of building, evaluating, deploying, and improving models that power millions of production conversations.This is a high-impact, high ownership role where you won’t just work on Bolna’s ML stack—you’ll help build the foundation it scales on.Our team includes IIT alumni with experience at Bain, Atlassian, Uber, Zomato, and LinkedIn, and is backed by leading investors.

Responsibilities
  • Build the data engine - Design pipelines to source and clean conversational voice data across Indian languages, accents, and telephony conditions.
  • Fine-tune models that ship - Fine tune and train models to improve accuracy, speed, and reliability across different use-cases.
  • Define what "good" means - Build evaluation datasets and benchmarks for transcription accuracy, voice naturalness, interruption handling, latency, and end-to-end conversation quality. Set up human-in-the-loop pipelines to capture subjective quality at scale.
  • Ship to production - Work with the engineering team to deploy models into a latency-sensitive, high-volume system. Monitor performance in the wild, debug regressions, and iterate fast.
Requirements
  • 3+ years of hands‑on ML experience with deep practical real‑world experience in training models.
  • Strong Python and PyTorch fundamentals with exposure in distributed training, and modern fine‑tuning techniques (LoRA, QLoRA, DPO, RLHF, etc.).
  • Training data as a first‑class problem. Experience designing data pipelines from collection, cleaning, labeling, deduplication, augmentation and treating data quality as a core engineering discipline.
  • Rigorous about evaluation. You know that "looks good in a demo" is not a benchmark. You build the evals before you trust the model.
  • Speech model experience is a plus with real‑time / streaming inference experience where you would have contributed to latency optimization, quantization, and distillation for production deployment.
  • Bias toward shipping. You’d rather have a model running in production this week than a perfect one in a notebook next quarter.
  • Preferred Skills:
  • Speech and real‑time ML expertise: Experience working with speech, audio, multimodal, or real‑time machine learning systems.
  • Voice AI domain knowledge: Hands‑on experience with ASR, TTS, VAD, language identification, speaker systems, or conversational turn‑taking.
  • Multilingual model development: Experience building and evaluating multilingual models, particularly for Indian languages.
  • Inference optimisation: Experience with streaming inference, latency optimisation, quantisation, distillation, or model compression for production deployment.

Backed to build big: Bolna is backed by Y Combinator and leading investors, and we are on a mission to build a generational voice AI company from India.

Rocketship trajectory: We’re profitable, growing at YC speed, and handling 4M+ minutes of real conversations every week - you will have a shotgun seat in seeing these numbers multiply

Founding team seat: You will be one of the earliest members of Bolna’s ML team and help shape our ML architecture, engineering culture, evaluation standards, and technical roadmap.

Hard problems, real ownership: We orchestrate thousands of real‑time voice AI conversations in parallel. You will own high‑stakes problems that directly affect engineering, customer experience, infrastructure cost, and revenue.

Learn like a founder: This is not a narrow role. You will have visibility into product strategy, customer feedback, and business outcomes—and influence decisions beyond just model development.

Benefits
  • Competitive package
  • meaningful ESOP for early ownership
  • Health Insurance
About the Company
Bolna

Technology

Bolna is a Voice AI Platform purpose‑built for India’s scale, linguistic complexity, and cost sensitivity. We enable enterprises to go live with thousands of concurrent calls in days, not months.

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