Avatar for Gunpowder Innovations
Gunpowder Innovations
Actively Hiring
A technology-first company building high-performance applications in fintech and health tech

AI Engineer

  • ₹30,000 – ₹1L • No equity
  • |Remote (
    Everywhere
    )
  • |3 years of exp
  • |Full Time
Posted: 3 weeks ago
Hires remotely in
Everywhere
Remote Work Policy

Remote only

Company Location
Visa Sponsorship

Not Available

Preferred Timezones
Maldives Time
RelocationAllowed
Skills
Aiml
Generative AI
Agentic AI

About the job

About the role

We’re building AI systems for clients who need more than a chatbot bolted onto an API. This role is for someone who can go deep: fine-tuning models, deploying open-source LLMs, building agentic systems, and designing the infrastructure that makes AI products actually work in production.

Key Responsibilities

Design and own the architecture for AI-powered features across client projects, from model selection through to production deployment
Build agentic systems: tool use, multi-step reasoning, orchestration frameworks, and the harnesses that let models act reliably in real environments
Work hands-on with open-source models, including fine-tuning, quantisation, evaluation, and self-hosting where it makes sense
Build the infrastructure around AI systems: retrieval pipelines, vector stores, inference optimisation, monitoring and evals
Make the call on when to use a foundation model API versus when to fine-tune or self-host, and be able to justify it
Collaborate directly with clients to translate ambiguous problems into working AI systems
Stay ahead of the open-source and agentic tooling ecosystem so Gunpowder’s clients get informed, current recommendations, not last year’s stack

Requirements

Real experience building agentic systems, fine tuning models and opensource work, not just prompting a hosted API
Hands-on experience building agentic workflows: designing harnesses, tool-calling logic, and evaluation loops for agents that operate with real autonomy
Strong grasp of the open-source LLM landscape: tools, frameworks, trade-offs, licensing
Comfortable owning technical decisions end-to-end, from architecture to deployment
Practical engineering skills: Python, ML infra (Docker, cloud deployment, vector DBs), and the judgement to know what’s overkill and what isn’t
A builder’s instinct: you’d rather ship something real than write another slide about AI strategy

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