招聘
Required Skills
Kubernetes
Slurm
Python
C++
PyTorch
Networking
Storage management
We are looking for an AI Infra engineer to join our growing team. We work with Kubernetes, Slurm, Python, C++, Py Torch, and primarily on AWS. As an AI Infrastructure Engineer, you will be partnering closely with our Inference and Research teams to build, deploy, and optimize our large-scale AI training and inference clusters
RESPONSIBILITIES:
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Design, deploy, and maintain scalable Kubernetes clusters for AI model inference and training workloads
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Manage and optimize Slurm-based HPC environments for distributed training of large language models
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Develop robust APIs and orchestration systems for both training pipelines and inference services
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Implement resource scheduling and job management systems across heterogeneous compute environments
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Benchmark system performance, diagnose bottlenecks, and implement improvements across both training and inference infrastructure
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Build monitoring, alerting, and observability solutions tailored to ML workloads running on Kubernetes and Slurm
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Respond swiftly to system outages and collaborate across teams to maintain high uptime for critical training runs and inference services
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Optimize cluster utilization and implement autoscaling strategies for dynamic workload demands
QUALIFICATIONS:
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Strong expertise in Kubernetes administration, including custom resource definitions, operators, and cluster management
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Hands-on experience with Slurm workload management, including job scheduling, resource allocation, and cluster optimization
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Experience with deploying and managing distributed training systems at scale
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Deep understanding of container orchestration and distributed systems architecture
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High level familiarity with LLM architecture and training processes (Multi-Head Attention, Multi/Grouped-Query, distributed training strategies)
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Experience managing GPU clusters and optimizing compute resource utilization
REQUIRED SKILLS:
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Expert-level Kubernetes administration and YAML configuration management
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Proficiency with Slurm job scheduling, resource management, and cluster configuration
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Python and C++ programming with focus on systems and infrastructure automation
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Hands-on experience with ML frameworks such as Py Torch in distributed training contexts
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Strong understanding of networking, storage, and compute resource management for ML workloads
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Experience developing APIs and managing distributed systems for both batch and real-time workloads
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Solid debugging and monitoring skills with expertise in observability tools for containerized environments
PREFERRED SKILLS:
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Experience with Kubernetes operators and custom controllers for ML workloads
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Advanced Slurm administration including multi-cluster federation and advanced scheduling policies
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Familiarity with GPU cluster management and CUDA optimization
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Experience with other ML frameworks like Tensor Flow or distributed training libraries
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Background in HPC environments, parallel computing, and high-performance networking
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Knowledge of infrastructure as code (Terraform, Ansible) and Git Ops practices
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Experience with container registries, image optimization, and multi-stage builds for ML workloads
REQUIRED EXPERIENCE:
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Demonstrated experience managing large-scale Kubernetes deployments in production environments
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Proven track record with Slurm cluster administration and HPC workload management
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Previous roles in SRE, DevOps, or Platform Engineering with focus on ML infrastructure
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Experience supporting both long-running training jobs and high-availability inference services
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Ideally, 3-5 years of relevant experience in ML systems deployment with specific focus on cluster orchestration and resource management
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About Perplexity AI

Perplexity AI
Series BPerplexity AI, Inc., or simply Perplexity, is an American privately held software company offering a web search engine that processes user queries and synthesizes responses.
51-200
Employees
San Francisco
Headquarters
$1B
Valuation
Reviews
4.0
1 reviews
Work Life Balance
3.0
Compensation
3.0
Culture
3.0
Career
3.5
Management
3.0
70%
Recommend to a Friend
Pros
Helpful tool for research and analysis
Useful for job application preparation
Effective for complex marketing challenges
Cons
Limited feedback provided
No specific criticisms mentioned
Insufficient detail on potential drawbacks
Salary Ranges
28 data points
Senior/L5
Senior/L5 · Data Scientist
0 reports
$791,025
total / year
Base
-
Stock
-
Bonus
-
$672,171
$909,879
Interview Experience
1 interviews
Difficulty
4.0
/ 5
Duration
14-28 weeks
Experience
Positive 0%
Neutral 0%
Negative 100%
Interview Process
1
Application Review
2
HR Screen
3
Take-home Marketing Challenge
4
Hiring Manager Interview
5
Panel Interview
6
Offer
Common Questions
Digital Marketing Strategy
Campaign Performance Analysis
Behavioral/STAR
Technical Marketing Knowledge
Case Study
News & Buzz
After lawsuit, one of the biggest Amazon customers, Perplexity, signs $750 million deal with Microsoft, says 'AWS remains' - MSN
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5w ago
Perplexity signs $750 million AI cloud deal with Microsoft - The American Bazaar
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Perplexity strikes Microsoft AI cloud deal amid Amazon legal fight - Cryptopolitan
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Perplexity Inks Microsoft AI Cloud Deal Amid Dispute With Amazon - Bloomberg
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5w ago