Forward Deployed Software Engineer

Posted Yesterday
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Bengaluru, Bengaluru Urban, Karnataka, IND
In-Office
Mid level
Artificial Intelligence • Software
The Role
Work with product and customers to design, build, deploy, monitor, and iterate production-grade agentic AI systems across channels. Implement multi-agent architectures, data pipelines, integrations, and evaluation metrics; own client engagements from kickoff to go-live.
Summary Generated by Built In
About Sarvam

Sarvam is building the bedrock of Sovereign AI for India. The company is developing India's full-stack sovereign AI platform, building across research, models, infrastructure and applications with a singular focus on making AI genuinely work for India. Sarvam works with leading enterprises and public institutions and is backed by Lightspeed, Peak XV, and Khosla Ventures. Sarvam partners with India's leading brands, including Tata Capital, SBI Life, CRED, IDFC, and LIC.

 

About the Role

We are looking for high-agency engineers who can architect and build production-grade solutions using generative AI and agentic systems. As an FDSE at Sarvam, you will work directly with customers and product teams, understand their problems deeply, and ship real solutions fast — not prototypes or demos, but things that run in production.

This is not a single opening. We have multiple positions across Samvaad, API Dashboard, Content Studio, and ARYA — and we will match you to the team where your skills and interests fit best.

 

What You'll Do

The specifics depend on which product team you join. Here is what ownership looks like across each:

 

Samvaad

• Build, deploy, monitor, and evaluate conversational AI agents across channels — Voice, WhatsApp, website (voice and chat), and in-app — integrating them deeply into client systems and workflows

•  Scope and design end-to-end technical solutions for client requirements, translating business needs into clean, production-ready architectures

•  Own client engagements from kickoff to go-live: manage technical communication, build strong client relationships, and keep delivery on track

•  Instrument and improve deployed agents: debug failure modes, tune prompts, and iterate on agent behaviour based on real usage data

•  Work closely with product and research to bring new model capabilities into customer-facing features quickly

 

API Dashboard

•  Build plugins, integrations, and developer-facing tooling that make Sarvam APIs easy to use and powerful to build on

• Contribute to open-source projects — writing plugins and extensions that add native support for Sarvam models across the developer ecosystem

•  Own the developer experience end-to-end — from API design to documentation to onboarding flows

•  Build and maintain applications that showcase Sarvam's APIs in real-world use cases

 

Content Studio

• Own end-to-end deployment of Sarvam's dubbing and live translation APIs into client and partner production environments — from scoping and integration to go-live and ongoing support

•  Serve as the primary technical point of contact with clients: navigate integration requirements, debug live issues, unblock partners, and communicate clearly with both technical and non-technical stakeholders

•  Prototype quickly for ambiguous or novel client requirements; build managed service delivery pipelines where standard integrations don't fit, across dubbing and document translation

•  Contribute to platform engineering (frontend, backend, ML pipelines) during non-deployment cycles

 

ARYA

•  Build MCP (Model Context Protocol) servers and agentic backend infrastructure that power Sarvam's AI agents

•  Apply strong system design thinking to architect multi-agent systems: tool calling, memory, orchestration, and inter-agent coordination

•  Design and maintain data pipelines using messaging systems like Kafka, SQS, or RabbitMQ — handling high-throughput, reliable event-driven workflows

•  Work with SQL and NoSQL databases at scale — schema design, query optimisation, and data modelling for agentic workloads

•  Work with agentic frameworks like LangGraph and Google ADK, and know when to go beyond them and build from scratch

•  Contribute to internal tooling and infrastructure used across all FDSE teams

 

What We're Looking For

•  2–5 years of software engineering experience with a track record of building and shipping production systems

• Strong Python fluency and comfort across the stack

•  Deep understanding of how LLMs and agents work — context windows, tokens, embeddings, RAG, tool calling, prompt design, and failure modes; hands-on experience with both open and closed-source LLMs

•  Experience designing and implementing multi-agent architectures, including memory management and orchestration

•  Ability to set up eval pipelines and define meaningful quality metrics for agentic AI systems

•  Systems thinking: ability to reason about architecture, reliability, scale, trade-offs, and failure modes

•  High agency — you unblock yourself, figure things out, and ship without hand-holding

 

Bonus Points

•  End-to-end deployment of working AI agents in production — not a demo, something that does a real job

•  Side projects, open-source contributions, or products shipped outside of work

•  Prior experience in a customer-facing or product-embedded engineering role

•  Deep familiarity with LLM orchestration frameworks (LangChain, LlamaIndex, CrewAI, LangGraph) — ideally able to author agents from scratch without depending on them

•  Experience with voice/speech models (TTS, STT, ASR), cloud platforms, or real-time media and streaming pipelines

•  Familiarity with Sarvam models and APIs from personal or project use

 

Why Sarvam?

Sarvam is a fast-moving, high talent-density team building full-stack AI for India, working on problems that push the frontiers of AI with real population-scale impact.

•  Work alongside researchers, engineers, builders, and business leaders who move fast and hold each other to a very high bar

•  High ownership and high impact, from day one

•  Everything we do is AI-first, from the way we build and ship to the way we think about problems

•  You can work on problems that could change how an entire country learns, works, and communicates

 

If you want to work on problems at the frontier of AI in India, Sarvam is the place to be.

Skills Required

  • 2-5 years of software engineering experience
  • Strong Python fluency
  • Deep understanding of LLMs and agents (context windows, tokens, embeddings, RAG, tool calling, prompt design, failure modes) with hands-on open and closed-source LLM experience
  • Experience designing and implementing multi-agent architectures including memory management and orchestration
  • Ability to set up evaluation pipelines and define meaningful quality metrics for agentic AI systems
  • Systems thinking: architecture, reliability, scale, trade-offs, and failure mode reasoning
  • High agency and ability to work independently and ship production systems
  • Experience with SQL and NoSQL databases at scale (schema design, query optimization, data modelling)
  • Experience designing and maintaining data pipelines using messaging systems like Kafka, SQS, or RabbitMQ for event-driven workflows
  • Familiarity with agentic frameworks and MCP servers (e.g., LangGraph, Google ADK)
  • Customer-facing or product-embedded engineering experience (working directly with clients)
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The Company
HQ: Bangalore, Karnataka
50 Employees
Year Founded: 2023

What We Do

We are an AI/ML research and development company on a mission to build reliable, performant, enterprise-grade AI systems at scale for India. We are committed to build the full-stack for generative AI for the rich & diverse landscape of India, mainly investing in: 1) Models: developing both efficient large scale Indic language models as well as bespoke enterprise models 2) Platform: building an enterprise-grade platform that empowers organisations to develop and ship creative and performant genAI applications at scale 3) Ecosystem: contributing to open-source models and datasets, as well as leading efforts for large scale data curation in public-good space

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