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Nexxa
Development 2h ago

Senior/Staff DevOps Engineer

Nexxa
CanadaCanada
Full-time
Not Disclosed
Senior-Level

Job Description

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Cloud PlatformsInfrastructure-as-CodeKubernetesAI Engineer

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About the Role

We're looking for a Senior/Staff DevOps Engineer who has spent the last several years building and operating the infrastructure that lets AI and industrial systems run reliably at scale. You understand what it takes to keep production ML and data workloads fast, observable, and resilient β€” from GPU-backed training and inference clusters to the pipelines that connect them to real-world industrial environments.

This role is ideal for candidates who want deep infrastructure ownership at a company where uptime, latency, and reliability directly affect physical operations β€” not just software. You'll partner closely with AI, data, and product engineering teams to make sure the systems they build can actually run in production, safely and at scale.

What You'll Do

  • Own and evolve Nexxa's core infrastructure β€” compute, networking, storage, and deployment systems β€” end-to-end
  • Design and operate CI/CD pipelines that support fast, safe iteration across AI, data, and product engineering teams
  • Build and maintain infrastructure-as-code (e.g., Terraform, Pulumi) for reproducible, auditable environments across cloud and on-prem/edge deployments
  • Architect and manage Kubernetes-based platforms for training, inference, and application workloads, including GPU scheduling and autoscaling
  • Partner with data and AI teams to support the infrastructure behind:
    • Data warehouses and lakehouse architectures (e.g., Snowflake, BigQuery, Redshift, Databricks)
    • Feature stores, embedding indices, and retrieval pipelines
    • Model training, evaluation, and serving infrastructure
  • Define and drive observability practices β€” metrics, logging, tracing, and alerting β€” across distributed systems
  • Establish and enforce reliability practices: SLOs/SLIs, incident response, postmortems, and on-call rotations
  • Design for security and compliance across cloud infrastructure, secrets management, and access control, particularly relevant to industrial and legacy-environment integrations
  • Make pragmatic tradeoffs across cost, latency, reliability, and developer velocity
  • Collaborate with engineering leadership to define infrastructure roadmap and platform strategy
  • Mentor engineers on infrastructure best practices and raise the bar for operational excellence across the org

Required Qualifications

  • 6+ years of experience in DevOps, Site Reliability Engineering, Platform Engineering, or infrastructure-focused software engineering roles
  • Deep hands-on experience with:
    • Cloud platforms (AWS, GCP, or Azure) at production scale
    • Kubernetes in production, including GPU workload scheduling
    • Infrastructure-as-code tooling (Terraform, Pulumi, or equivalent)
    • CI/CD systems (e.g., GitHub Actions, GitLab CI, CircleCI, Jenkins, ArgoCD)
  • Strong track record designing and operating observability stacks (e.g., Prometheus, Grafana, Datadog, OpenTelemetry)
  • Experience supporting ML/AI infrastructure β€” training clusters, model serving, data pipelines β€” a strong plus
  • Excellent scripting/programming skills (Python, Go, or Bash) for automation and tooling
  • Proven ability to independently scope and lead infrastructure projects from design through production rollout
  • Strong incident management instincts β€” you can lead through an outage calmly and drive toward root cause

Preferred Qualifications

  • Experience operating infrastructure that bridges cloud and edge/on-prem environments, especially in industrial or manufacturing contexts
  • Familiarity with data warehouse/lakehouse platforms (Snowflake, BigQuery, Redshift, Databricks)
  • Experience with service mesh, zero-trust networking, or compliance frameworks relevant to industrial/critical infrastructure (e.g., SOC 2, IEC 62443)
  • History of building internal developer platforms or self-service infrastructure tooling
  • Experience scaling infrastructure teams or setting technical direction at a Staff level

What Success Looks Like

  • You can own ambiguous, high-stakes infrastructure problems end-to-end
  • Systems you build stay reliable as usage and scale grow β€” you design for the next order of magnitude, not just today
  • You bring strong technical judgment on tradeoffs between reliability, cost, and speed
  • You raise the bar for operational rigor and engineering discipline across the team
  • You help define what's next for the platform, not just execute what's known

Why Join Nexxa.ai?

  • Innovative Environment: Play a critical role in transforming heavy industries through groundbreaking AI and automation technologies
  • Collaborative Culture: Be part of a team that values innovation, discipline, and continuous improvement
  • Professional Growth: Benefit from significant opportunities for career development and advancement
  • Competitive Compensation: Enjoy a comprehensive salary and equity package reflective of your expertise and contributions

If you're passionate about building the infrastructure that powers advanced AI solutions in the real world, we'd love to connect.

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Nexxa is a cutting-edge artificial intelligence startup focused on building next-generation workflow automation and intelligent data processing solutions for modern enterprises. Operating at the forefront of the generative AI revolution, the company provides a robust, cloud-native platform that integrates seamlessly with existing corporate tech stacks. Under the hood, Nexxa leverages advanced large language models (LLMs) and custom machine learning algorithms to automate complex, unstructured data tasksβ€”transforming chaotic, raw information into highly structured, actionable business insights. Their primary target audience includes revenue operations teams, data analysts, and enterprise executives who need to supercharge their productivity without dramatically expanding their manual workforce. What sets Nexxa apart in the crowded AI SaaS landscape is its hyper-focus on seamless deployment and rapid time-to-value, allowing businesses to deploy bespoke AI agents that intelligently adapt to highly specific, industry-regulated workflows.

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