DevOps Engineer - Senior Vice President

iCapital Network

New York (NY)

Hybrid

USD 180,000 - 230,000

Full time

14 days+

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Benefits offered by this job

Equity
Annual bonus
Comprehensive benefits
Generous PTO

Job summary

iCapital Network's Platform Infrastructure team seeks a highly collaborative MLOps/DevOps Engineer to design, build, and operate scalable, secure platforms for ML workloads on AWS. You will partner with engineering, security, data, and business teams to deliver reliable, automated systems across production and development environments.

Responsibilities include implementing ML lifecycle pipelines, CI/CD for AI services, Terraform-driven infra, model versioning, observability, cost optimization,

Qualifications

  • 15+ years of experience in DevOps, SRE, or Platform Engineering (AWS focus).
  • Production ML systems deployment and monitoring experience.
  • Hands-on AWS SageMaker expertise required.
  • Kubernetes, containers, and cloud networking proficiency.
  • CI/CD pipelines with GitLab CI or ArgoCD.
  • Terraform and Python scripting proficiency.
  • Strong Linux and troubleshooting fundamentals.
  • Excellent cross-team communication abilities.
  • Experience with MLOps platforms and tooling (model registries, experiment tracking, feature stores).
  • Experience with Generative AI/LLM workloads in production.
  • Familiarity with Postgres, DynamoDB, object storage.
  • Fintech/regulatory environment exposure.
  • Cost optimization for compute workloads.
  • AWS certifications are a plus.

Responsibilities

  • Design, build, and operate MLOps pipelines supporting the full ML lifecycle (training, validation, deployment, monitoring).
  • Enable production workloads for AI/ML and Generative AI systems, including LLM-based services.
  • Develop and maintain CI/CD pipelines for AI/ML services and supporting infrastructure.
  • Build and manage cloud-native infrastructure on AWS, with heavy use of Kubernetes and containerized workloads.
  • Automate infrastructure provisioning and configuration using Infrastructure as Code (Terraform).
  • Implement model versioning, experiment tracking, and artifact management across environments.
  • Ensure reliability, scalability, observability, and cost efficiency of AI platforms.
  • Partner with AI/ML engineers to operationalize models and standardize deployment patterns.
  • Implement monitoring and alerting for system health, model performance, and drift.
  • Enforce security, compliance, and governance requirements for AI workloads.
  • Participate in incident response, root cause analysis, and continuous improvement initiatives.
  • Document standards, best practices, and reference architectures for MLOps and AI infrastructure.

Skills

AWS
Kubernetes
CI/CD pipelines
Terraform
Python scripting
Linux fundamentals
SageMaker
Security governance
Observability
Cost optimization
Model versioning
LLM workloads
GitLab CI
ArgoCD

Tools

GitLab CI
ArgoCD

Job description

The Platform Infrastructure team at iCapital plays a critical role in ensuring that both production and development environments operate smoothly, securely, and reliably. This role leverages advanced cloud capabilities to support the Platform Infrastructure strategy of market agility and lean operating principles, with a strong emphasis on quality to meet the ever‑growing demands of our clients.

We are seeking highly collaborative, creative, and intellectually curious MLOps/DevOps Engineers with deep expertise in machine learning operations, cloud infrastructure, CI/CD automation, Kubernetes, and security. This role requires hands‑on experience designing, building, and operating scalable DevOps and enterprise‑grade MLOps platforms, including model lifecycle automation, observability, and governance.

As a Platform Engineer, you will wear multiple hats in a highly visible role, partnering closely with engineering, security, data, and business teams to deliver secure, reliable, and highly automated platforms that support both application and machine‑learning workloads.

Responsibilities
  • Design, build, and operate MLOps pipelines supporting the full ML lifecycle (training, validation, deployment, monitoring).
  • Enable production workloads for AI/ML and Generative AI systems, including LLM‑based services.
  • Develop and maintain CI/CD pipelines for AI/ML services and supporting infrastructure.
  • Build and manage cloud‑native infrastructure on AWS, with heavy use of Kubernetes and containerized workloads.
  • Automate infrastructure provisioning and configuration using Infrastructure as Code (Terraform).
  • Implement model versioning, experiment tracking, and artifact management across environments.
  • Ensure reliability, scalability, observability, and cost efficiency of AI platforms.
  • Partner with AI/ML engineers to operationalize models and standardize deployment patterns.
  • Implement monitoring and alerting for system health, model performance, and drift.
  • Enforce security, compliance, and governance requirements for AI workloads.
  • Participate in incident response, root cause analysis, and continuous improvement initiatives.
  • Document standards, best practices, and reference architectures for MLOps and AI infrastructure.
Required Qualifications
  • 15+ years of experience in DevOps, SRE, or Platform Engineering, with AWS as a primary cloud.
  • Experience supporting machine learning systems in production, including deployment and monitoring concerns.
  • Hands‑on experience with machine learning platforms, particularly AWS SageMaker (required).
  • Strong hands‑on experience with Kubernetes, containerized workloads, and cloud networking.
  • Proven experience building and operating CI/CD pipelines (e.g., GitLab CI, ArgoCD).
  • Strong proficiency with Terraform and scripting/programming in Python or similar languages.
  • Solid Linux, systems, and troubleshooting fundamentals.
  • Excellent communication skills and ability to work across teams.
  • Direct experience with MLOps platforms and tooling (model registries, experiment tracking, feature stores).
  • Exposure to Generative AI / LLM workloads in production environments.
  • Familiarity with data stores commonly used in ML systems (e.g., Postgres, DynamoDB, object storage).
  • Experience operating in regulated or fintech environments.
  • Background in cost optimization for compute‑intensive workloads.
  • Strong written and verbal communication skills.
  • AWS certifications are a plus.

The base salary range for this role is $180,000 to $230,000 depending on experience. iCapital offers a compensation package which includes salary, equity for all full‑time employees, and an annual performance bonus. Employees also receive a comprehensive benefits package that includes an employer matched retirement plan, generously subsidized healthcare with 100% employer paid dental, vision, telemedicine, and virtual mental health counseling, parental leave, and unlimited paid time off (PTO).

We believe the best ideas and innovation happen when we are together. Employees in this role will work in the office Monday‑Thursday, with the flexibility to work remotely on Friday.

iCapital is proud to be an Equal Employment Opportunity and Affifiative Action employer. We do not discriminate based upon race, religion, color, national origin, gender, sexual orientation, gender identity, age, status as a protected veteran, status as an individual with a disability, or other applicable legally protected characteristics

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