Jobs
Required Skills
PyTorch
Kubernetes
ML Infrastructure
GPU Optimization
Monitoring
We are building AI to simulate the world through merging art and science.
We believe that world models are at the frontier of progress in artificial intelligence. Language models alone won’t solve the world’s hardest problems – robotics, disease, scientific discovery. Real progress requires models that experience the world and learn from their mistakes, the same way that humans do. And this kind of trial and error can be massively accelerated when done in simulation, rather than in the real world.
World models offer the most clear path to general-purpose simulation, changing how stories are told, how scientific progress is made and how the next frontiers of humanity are reached.
Our team consists of creative, open minded, caring and ambitious people who are determined to change the world. We aspire to continuously build impossible things and our ability to do so relies on building an incredible team. If you are driven to do the same, we'd love to hear from you.
About the role
We're looking for an ML infrastructure engineer to bridge the gap between research and production at Runway. You'll work directly with our research teams to productionize cutting-edge generative models—taking checkpoints from training to staging to production, ensuring reliability at scale, and building the infrastructure that enables fast iteration.
You'll be embedded within research teams, providing platform support throughout the entire model development lifecycle. Your work will directly impact how quickly we can ship new models and features to millions of users.
A peek at our technical stack
Our API endpoints for real-time collaboration and media asset management is written in TypeScript, and runs in ECS containers on AWS Fargate. We leverage multiple AWS-native components, such as S3, CloudFront, Lambda, Kinesis, and SQS, as building blocks of our infrastructure.
Our inference backend is written in **Python (Py Torch, Torch Script),**and is deployed across multiple clusters / cloud providers. We use Kubernetes for container orchestration, and k8s-native components such as Flyte, Kueue, and Kyverno efficient job orchestration. We invest in prometheus and grafana for monitoring, and Terraform to manage our infrastructure.
What you’ll do
-
Productionize model checkpoints end-to-end: from research completion to internal testing to production deployment to post-release support
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Build and optimize inference systems for large-scale generative models running on multi-GPU environments
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Design and implement model serving infrastructure specialized for diffusion models and real-time diffusion workflows
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Add monitoring and observability for new model releases—track errors, throughput, GPU utilization, and latency
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Embed with research teams to gather training data, run preprocessing scripts, and support the model development process
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Explore and integrate with GPU inference providers (Modal, E2E, Baseten, etc.)
What you’ll need
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4+ years of experience running ML model inference at scale in production environments
-
Strong experience with Py Torch and multi-GPU inference for large models
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Experience with Kubernetes for ML workloads—deploying, scaling, and debugging GPU-based services
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Comfortable working across multiple cloud providers and managing GPU driver compatibility
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Experience with monitoring and observability for ML systems (errors, throughput, GPU utilization)
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Self-starter who can work embedded with research teams and move fast
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Strong systems thinking and pragmatic approach to production reliability
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Humility and open mindedness; at Runway we love to learn from one another
Nice to Have
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Experience building custom inference frameworks or serving systems
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Deep understanding of distributed training and inference patterns (FSDP, data parallelism, tensor parallelism)
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Ability to debug low-level issues: NCCL networking problems, CUDA errors, memory leaks, performance bottlenecks
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Experience with diffusion models or video generation systems
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Knowledge of real-time or latency-sensitive ML applications
Runway strives to recruit and retain exceptional talent from diverse backgrounds while ensuring pay equity for our team. Our salary ranges are based on competitive market rates for our size, stage and industry, and salary is just one part of the overall compensation package we provide.
There are many factors that go into salary determinations, including relevant experience, skill level and qualifications assessed during the interview process, and maintaining internal equity with peers on the team. The range shared below is a general expectation for the function as posted, but we are also open to considering candidates who may be more or less experienced than outlined in the job description. In this case, we will communicate any updates in the expected salary range.
Lastly, the provided range is the expected salary for candidates in the U.S. Outside of those regions, there may be a change in the range, which again, will be communicated to candidates.
Salary range: $240,000-290,000
Working at Runway
Great things come from great teams. We’d love to hear from you.
We’re committed to creating a space where our employees can bring their full selves to work and have equal opportunity to succeed. So regardless of race, gender identity or expression, sexual orientation, religion, origin, ability, age, veteran status, if joining this mission speaks to you, we encourage you to apply.
More about Runway:
- Universal World Simulator
GWM-1
Gen-4.5
General World Models:
Robotics SDK
Conversational Real-time Agents:
Runway Studios
We're excited to be recognized as a best place to work Crain's | In Her Sight | Built In NYC | INC
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About Runway

Runway
Series CA site for computer programmers, offering services, advice, tips and tools.
1-50
Employees
Chennai
Headquarters
$1.5B
Valuation
Reviews
3.3
10 reviews
Work Life Balance
3.2
Compensation
2.5
Culture
3.1
Career
4.0
Management
3.0
55%
Recommend to a Friend
Pros
Supportive and caring management
Creative and artistic work environment
Career development opportunities
Cons
Poor management and micromanaging
Unprofessional and unsafe workplace
Low pay and compensation issues
Salary Ranges
38 data points
Mid/L4
Mid/L4 · Associate
1 reports
$172,500
total / year
Base
$150,000
Stock
-
Bonus
-
$172,500
$172,500
Interview Experience
5 interviews
Difficulty
3.8
/ 5
Duration
21-35 weeks
Offer Rate
80%
Experience
Positive 20%
Neutral 40%
Negative 40%
Interview Process
1
Application Review
2
Recruiter Screen
3
Technical Interview
4
System Design Interview
5
Behavioral Interview
6
Hiring Manager Interview
7
Offer
Common Questions
Technical Knowledge
System Design
Behavioral/STAR
Coding/Algorithm
Past Experience
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