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Deepgram

ML Ops Infrastructure Engineer

Work from home

Remote role where the employee must remain based in a particular country.

United States only

Employer listed it 6 months ago · Added 5 days ago

Been open since 6 months ago. Long-running listings are sometimes left up after the role is filled.

Salary

$160,000 to $220,000

Location

United States only

Timezone

US East

Contract

Full-time

Experience

Mid

Category

Software

Published by the employer

Remote flexibility

Work from home

This is a remote role, but the employee must be based in United States. It is work from home rather than work from anywhere.

What the employer says

  • Source listing states candidate location: "USA | Remote, Remote"

What Nomaders makes of it

  • Residency required in United States
  • Payroll and tax are likely handled in that country only

The quotes above are the employer's own words; the reading is ours. Always check the original listing and employment terms before working from another country.

About the role

Company Overview

Deepgram is the leading platform underpinning the emerging trillion-dollar Voice AI economy, providing real-time APIs for speech-to-text (STT), text-to-speech (TTS), and building production-grade voice agents at scale. More than 200,000 developers and 1,300+ organizations build voice offerings that are ‘Powered by Deepgram’, including Twilio, Cloudflare, Sierra, Decagon, Vapi, Daily, Cresta, Granola, and Jack in the Box. Deepgram’s voice-native foundation models are accessed through cloud APIs or as self-hosted and on-premises software, with unmatched accuracy, low latency, and cost efficiency. Backed by a recent Series C led by leading global investors and strategic partners, Deepgram has processed over 50,000 years of audio and transcribed more than 1 trillion words. There is no organization in the world that understands voice better than Deepgram.

Company Operating Rhythm

At Deepgram, we expect an AI-first mindset—AI use and comfort aren’t optional, they’re core to how we operate, innovate, and measure performance.

Every team member who works at Deepgram is expected to actively use and experiment with advanced AI tools, and even build your own into your everyday work. We measure how effectively AI is applied to deliver results, and consistent, creative use of the latest AI capabilities is key to success here. Candidates should be comfortable adopting new models and modes quickly, integrating AI into their workflows, and continuously pushing the boundaries of what these technologies can do.

Additionally, we move at the pace of AI. Change is rapid, and you can expect your day-to-day work to evolve just as quickly. This may not be the right role if you’re not excited to experiment, adapt, think on your feet, and learn constantly, or if you’re seeking something highly prescriptive with a traditional 9-to-5.

The Opportunity

Getting a model from a research notebook to a production API serving millions of requests is one of the hardest problems in AI. As an ML Ops Infrastructure Engineer at Deepgram, you will own the critical bridge between research and production -- building the pipelines, deployment systems, and testing infrastructure that take models from experimental to battle-tested at scale. Your work ensures that every model improvement our research team makes can be safely, quickly, and reliably delivered to the customers who depend on Deepgram's APIs for real-time voice AI.

What You'll Do

Design and build CI/CD pipelines specifically tailored for ML model development, validation, and deployment

Architect and maintain model deployment pipelines that move models from research environments through staging to production with confidence

Build A/B testing infrastructure that enables controlled rollouts of new models and measures real-world performance impact

Implement comprehensive monitoring for model performance in production -- accuracy metrics, latency, drift detection, and regression alerts

Develop automated retraining pipelines that trigger on data changes, performance degradation, or scheduled cadences

Create and maintain build and test environments that mirror production, giving researchers high-fidelity feedback before deployment

Establish model versioning, artifact management, and rollback capabilities to ensure safe and reproducible deployments

Collaborate with research engineers to define and enforce model quality gates before production promotion

Build observability dashboards that give the team real-time insight into model health across all environments

Optimize model serving infrastructure for latency, throughput, and cost efficiency

You'll Love This Role If You

Are excited by the challenge of operationalizing cutting-edge AI models at production scale

Believe that great infrastructure is what turns research breakthroughs into customer value

Enjoy designing systems that are automated, reliable, and self-healing

Want to work on problems where minutes of latency reduction or percentage points of accuracy matter enormously

Requirements

  • ·4+ years of experience in MLOps, DevOps, or infrastructure engineering with a focus on ML systems
  • ·Strong proficiency in Python and experience building automation and tooling for ML workflows
  • ·Deep experience with CI/CD systems and building pipelines for software and model delivery
  • ·Hands-on experience with Docker and Kubernetes for containerized workload management
  • ·Practical experience deploying and serving ML models in production environments

Benefits

No benefits package published with this listing. Ask about it at first interview.

How to apply

  1. 1Check the flexibility label above, work from home, matches where you plan to live and work.
  2. 2Tailor your CV to the role at Deepgram, mentioning your remote working experience and working hours (US East).
  3. 3Apply directly on the employer's careers page using the button below. Nomaders never handles your application.

Found 5d ago. Last checked 23 Sept. Always confirm the details on the original posting, salary and location can change after publication.

Listing sourced from Company boards.

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