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Platform Engineer

ExperiencedNo visa sponsorship
Millennium logo

at Millennium

Hedge Funds

Posted 2 days ago

No clicks

**Platform Engineer** Lead cloud-native design for AI workloads at scale. Engineer Kubernetes platform, managing security-sensitive, multi-tenant environments. Key responsibilities include implementing network policies, building CI/CD pipelines, and establishing infrastructure-as-code practices. Requires 5+ years in platform/infrastructure engineering, deep Kubernetes and AWS expertise, and proficiency in Terraform/Python/Go. Technical leadership and knowledge of AI infrastructure desired.

Compensation
Not specified

Currency: Not specified

City
Not specified
Country
Not specified

Full Job Description

Platform Engineer

We are looking for a platform infrastructure engineer to design, build, and operate cloud-native infrastructure for deploying AI workloads safely and reliably at scale.

AI systems including autonomous agents, model-serving pipelines, and long-running inference workloads present unique infrastructure challenges: multi-tenant isolation, network security, container lifecycle management, and operational resilience. This role owns the Kubernetes platform layer that makes safe cloud deployment of these workloads possible.

In this role, you will design container architectures for security-sensitive and multi-tenant environments, implement network policies and access controls for workload isolation, build CI/CD pipelines for reliable deployment, and establish infrastructure-as-code practices for reproducibility and auditability. You will work closely with AI engineers, while keeping the primary focus on the platform itself making it secure, scalable, and operationally excellent.

Beyond immediate needs, you will help establish platform infrastructure best practices that can be applied across the firms broader cloud-native footprint.

Qualifications

  • BS + 5 years or MS + 3 years in a platform/infrastructure/DevOps engineering role

  • Deep hands-on experience with Kubernetes (EKS preferred) cluster design, networking (CNI, service mesh), RBAC, and security policies

  • Strong AWS expertise VPC architecture, IAM, ECS/EKS, networking, and security groups

  • Proficiency with Infrastructure-as-Code tools such as Terraform, CloudFormation, or Pulumi

  • Experience designing container architectures for multi-tenant or security-sensitive workloads

  • Familiarity with GitOps workflows and CI/CD platforms (ArgoCD, GitHub Actions, Jenkins)

  • Python and/or Go for tooling and automation

  • Technical leadership ability to drive architectural decisions and mentor others

  • Desire to deliver cutting edge infrastructure in a fast-moving environment

  • Stay up-to-date with the latest advancements in cloud-native infrastructure, container security, and AI workload deployment

Nice to have

  • Familiarity with AI infrastructure agent orchestration frameworks, MCP

  • Experience in the financial domain regulated environments, compliance-aware infrastructure

  • Experience with container orchestration platforms for autonomous or long-running AI workloads

  • Prior experience securing production AI agent workloads at scale

Platform Engineer

Compensation

Not specified

City: Not specified

Country: Not specified

Millennium logo
Hedge Funds

2 days ago

No clicks

at Millennium

ExperiencedNo visa sponsorship

**Platform Engineer** Lead cloud-native design for AI workloads at scale. Engineer Kubernetes platform, managing security-sensitive, multi-tenant environments. Key responsibilities include implementing network policies, building CI/CD pipelines, and establishing infrastructure-as-code practices. Requires 5+ years in platform/infrastructure engineering, deep Kubernetes and AWS expertise, and proficiency in Terraform/Python/Go. Technical leadership and knowledge of AI infrastructure desired.

Full Job Description

Platform Engineer

We are looking for a platform infrastructure engineer to design, build, and operate cloud-native infrastructure for deploying AI workloads safely and reliably at scale.

AI systems including autonomous agents, model-serving pipelines, and long-running inference workloads present unique infrastructure challenges: multi-tenant isolation, network security, container lifecycle management, and operational resilience. This role owns the Kubernetes platform layer that makes safe cloud deployment of these workloads possible.

In this role, you will design container architectures for security-sensitive and multi-tenant environments, implement network policies and access controls for workload isolation, build CI/CD pipelines for reliable deployment, and establish infrastructure-as-code practices for reproducibility and auditability. You will work closely with AI engineers, while keeping the primary focus on the platform itself making it secure, scalable, and operationally excellent.

Beyond immediate needs, you will help establish platform infrastructure best practices that can be applied across the firms broader cloud-native footprint.

Qualifications

  • BS + 5 years or MS + 3 years in a platform/infrastructure/DevOps engineering role

  • Deep hands-on experience with Kubernetes (EKS preferred) cluster design, networking (CNI, service mesh), RBAC, and security policies

  • Strong AWS expertise VPC architecture, IAM, ECS/EKS, networking, and security groups

  • Proficiency with Infrastructure-as-Code tools such as Terraform, CloudFormation, or Pulumi

  • Experience designing container architectures for multi-tenant or security-sensitive workloads

  • Familiarity with GitOps workflows and CI/CD platforms (ArgoCD, GitHub Actions, Jenkins)

  • Python and/or Go for tooling and automation

  • Technical leadership ability to drive architectural decisions and mentor others

  • Desire to deliver cutting edge infrastructure in a fast-moving environment

  • Stay up-to-date with the latest advancements in cloud-native infrastructure, container security, and AI workload deployment

Nice to have

  • Familiarity with AI infrastructure agent orchestration frameworks, MCP

  • Experience in the financial domain regulated environments, compliance-aware infrastructure

  • Experience with container orchestration platforms for autonomous or long-running AI workloads

  • Prior experience securing production AI agent workloads at scale