Senior Machine Learning Engineer

SourcingXPress

Dadri

On-site

INR 5,000,000 - 7,000,000

Full time

29 hours ago
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Job summary

Vidpro is seeking a Senior ML Engineer to lead the development of AI-native education infrastructure across B2G and B2B sectors in India. You will own end-to-end ML platforms, from data pipelines to deployment, delivering scale and impact for hundreds of millions of learners.

The role emphasizes building production-grade LLM applications, RAG pipelines, and multilingual data integration with a mission-driven product approach.

Qualifications

  • Production-grade, maintainable code and end-to-end cloud service ownership.
  • Experience building RAG or agentic systems in production using LangChain, LangGraph, or equivalent.
  • Proven track record in automated LLM evaluation, benchmarks, and quality monitoring pipelines.
  • Backend engineering and cloud infrastructure for serving ML/LLM models at scale.

Responsibilities

  • Design, build, and deploy production-grade LLM applications, incl. RAG pipelines and tool-calling systems for education use cases.
  • Own full backend and AI service architectures—from data pipelines to orchestration APIs and deployment infrastructure.
  • Build evaluation harnesses, benchmarks, automated regression tests, and human-in-the-loop validation frameworks.
  • Implement latency and cost optimization: caching, batching, prompt-context optimization, and model routing.
  • Integrate multilingual data pipelines and various LLMs into production serving frameworks.

Skills

Production engineering
RAG & Agentic systems
LLM evaluation & monitoring
Backend & cloud infrastructure

Tools

LangChain
LangGraph

Job description

Senior ML Engineer – Generative AI

We are hiring for a high-impact, AI-native education infrastructure organization that operates across government (B2G) and enterprise (B2B) sectors. Their platforms power intelligent learning systems, adaptive digital classrooms, and AI-driven governance tools reaching over 150 million children across India.

Company: Vidpro

Website: Visit Website

LinkedIn: Visit LinkedIn

Business Type: Startup

LinkedIn: Visit LinkedIn

Business Type: Startup

Business Model: B2B2C

Funding Stage: Series B

Industry: Information Technology

Salary Range: ₹ 50-70 Lacs PA

Job Description

We are hiring for a high-impact, AI-native education infrastructure organization that operates across government (B2G) and enterprise (B2B) sectors. Their platforms power intelligent learning systems, adaptive digital classrooms, and AI-driven governance tools reaching over 150 million children across India.

This role is part of a 0-to-1 vertical build, offering a high degree of ownership, rapid iteration, and direct contribution to a mission-driven, population-scale AI infrastructure.

Key Responsibilities
  • Build Production LLM Systems: Design, build, and deploy production-grade LLM applications, including Retrieval-Augmented Generation (RAG) pipelines, agentic workflows, and tool-calling systems tailored for education use cases (e.g., adaptive feedback, automated Q&A, and curriculum alignment).
  • End-to-End System Architecture: Own full backend and AI service architectures—from data pipelines and retrieval layers to orchestration APIs and deployment infrastructure—using clean, maintainable, and tested production code.
  • LLM Evaluation & Monitoring: Build rigorous evaluation harnesses, task-specific benchmarks, automated regression tests, and human-in-the-loop validation frameworks to guard quality before release.
  • Latency & Cost Optimization: Implement caching, request batching, prompt-context optimization, and model routing to ensure fast, scalable, and cost-effective production deployment.
  • Data & Model Integration: Build grounding and instruction data pipelines for multilingual and regional contexts. Evaluate and integrate open-source, closed, and sovereign LLMs into production serving frameworks.
Key Qualifications
  • Production Engineering: Strong Python software engineering skills with experience writing production-grade, maintainable code (beyond notebooks and scripts) and owning cloud services end-to-end.
  • RAG & Agentic Systems: Hands-on experience building and shipping RAG or agentic systems in production using frameworks like LangChain, LangGraph, or equivalent orchestration platforms.
  • Evaluation Frameworks: Proven track record in building automated LLM evaluation systems, benchmark suites, and quality monitoring pipelines.
  • Backend & Cloud Infrastructure: Strong experience in backend engineering (REST APIs, data pipelines, containerized deployment, and cloud infrastructure) for serving ML/LLM models at scale.
Good to Have
  • Hands-on model fine-tuning experience (LoRA, QLoRA, SFT, DPO).
  • Experience with inference optimization (quantization, ONNX, efficient serving) or distributed training frameworks (DeepSpeed, FSDP).
Why Join?
  • Work on high-ownership, 0-to-1 AI product development with immense scale and real-world impact.
  • Competitive compensation package with comprehensive benefits.
  • High-growth, collaborative environment building state-of-the-art public AI systems.
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