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Metaforms

Senior AI Engineer

Bengaluru · Senior

Older listing - lower visibility likelyVerified listingPosted 103d ago

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86Overall
64Skills
97Experience

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Skills required

11 listed
Model Fine-TuningMarket ResearchAgentic AIContinuous MonitoringTraining DatasetsPrompt EngineeringModel MonitoringSemantic Parsing+3 more
Model Fine-TuningMarket ResearchAgentic AIContinuous MonitoringTraining Datasets

You almost certainly match several of these already. Unlock your skill map to see the matches, the gaps, and what to fix first.

Job description

About Metaforms

Market research runs on 30-year-old survey platforms and armies of specialists hand-coding questionnaires in proprietary languages. Metaforms is the agent layer that does that work. Every survey is a program — full of skip logic, piping, quotas, and loops — and a single wrong number in a client report is unrecoverable. Our AI agents write production survey code, QA live deployments, process and clean large structured datasets, configure analysis, and generate client-ready reports, so agencies like Dynata, Savanta, and Borderless Access ship more projects with far less friction.

  • 1,000+ surveys processed monthly

  • Serving Fortune 500 companies across the globe

  • Rapid month-over-month growth

We’re Series A funded and scaling fast, aggressively growing our AI engineering team to build the next generation of production-grade AI agent systems.

The Role

We’re hiring a Senior AI Engineer to own the design, development, and continuous improvement of the AI agent systems that power modern research operations.

This is a high-ownership, high-impact role at the intersection of applied AI and systems engineering. You’ll work on genuinely hard problems: agent reliability at scale, long-context handling, cascading error mitigation, and evaluation infrastructure — like codegen agents that write in proprietary DSLs, computer-use agents that QA live deployments, data agents that clean tabular exports and configure multi-step analysis, and evals for outputs where “correct” is genuinely ambiguous. And you’ll do it on a team that ships fast and treats quality as non-negotiable.

What You’ll Own

Agent Harness and Architecture

  • Own the agent harness our production agents run on — the loop where agents plan, use tools, check their work, and recover from failures

  • Lead research and implementation for long-context handling and cascading-error challenges in multi-step agent pipelines

  • Drive context engineering strategy and experimentation frameworks across the team

Evaluation and Production Monitoring

  • Define structured rubrics for evaluating AI outputs on nuanced, ambiguous research tasks

  • Build continuous monitoring, tracing, and failure-mode analysis for agents in production — including the loop that turns production failures into test cases

  • Create tooling that lets domain experts refine and evolve the skill files, eval sets, and knowledge bases our agents consume

Reliability for High-Stakes Outputs

  • Build eval suites — regression sets, golden datasets, LLM-as-judge pipelines — that catch regressions before deploy

  • Develop evaluation datasets for DSLs, structured data transforms, and computed outputs to systematically find and close model weaknesses

  • Design human-in-the-loop and review workflows for outputs where a single wrong number in a client report is unrecoverable

What We’re Looking For

Must-Have

  • Built and operated agentic systems in production — multi-step pipelines, tool use, codegen, computer-use, or data and reporting agents — not just prototypes

  • 4+ years of engineering experience, with at least 1 year focused on LLM/agent systems in production

  • Deep hands-on experience with frontier model APIs (Anthropic, OpenAI, Gemini), evaluation frameworks, and AI system optimization

  • Strong Python skills; Go or TypeScript a plus

  • Solid grasp of context engineering and evaluation methodology

  • Strong instincts for debugging complex, non-deterministic system failures

  • High ownership: you drive problems to resolution independently and pull others in when it matters

Nice to Have

  • Experience with LLM observability and eval tooling (Braintrust, Langfuse, LangSmith, Weave, promptfoo, or in-house equivalents)

  • Background in semantic parsing, DSLs, or structured-output generation

  • Prior work on computer-use or browser agents

  • Experience with human-in-the-loop agent workflows where proposals are reviewed before apply, or agents over large structured datasets

Why Metaforms

  • Work at the frontier of production AI: systems handling 1,000+ research projects a month, with the reliability bar that implies

  • A small, senior team where your decisions carry real architectural weight

  • Zero-bureaucracy culture: high autonomy, fast feedback loops, direct access to leadership

  • Well-funded and financially stable, with a clear roadmap and the runway to execute on it

Benefits

  • Full family health insurance

  • $1,000 USD annual learning and development budget

  • Dedicated mentor and coaching support

  • Free snacks and dinner at the office

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Two ways in

Applicants who checked fit first are 3.1× more likely to hear back

Your match scoreCalculated · locked
86Overall
64Skills
97Experience

Your score for this role already exists

ASAI compared this JD against 41 signals - skills, seniority, domain, stack overlap etc. Add a resume and it unlocks in about 30 seconds.

No credit card · 1 tap with Google

Free · no signup

Get tomorrow's jobs before you have to search

Daily job drops, skill trends and free resources - posted straight to the group. Leave any time.

Join WhatsAppJoin Telegram

No spam. Just jobs and resources.

Why people use ASAI

Someone shared one job with you. ASAI keeps finding the rest.

  • Scored, not searched. Every role ranked against your actual profile.

  • Alerts as often as hourly. Reach new roles while the pile is still small.

  • Skill gaps, spelled out. See exactly which requirements you don't meet yet.

  • Verified jobs, only. Say no to ghost jobs. Your time deserves respect.

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