AI Platform Engineer (Senior / Principal)

Posted 3 Days Ago
Be an Early Applicant
Toronto, ON, CAN
Hybrid
Senior level
Cloud • Information Technology • Software
The Role
Design, build, and operate secure, scalable AI platform capabilities (IaC, Kubernetes, CI/CD, observability, IAM) to enable enterprise AI delivery. Create reusable services (model/API gateways, inference routing, vector/retrieval), enforce governance and SLOs, optimize cost/performance, and mentor engineers while partnering with security and architecture stakeholders.
Summary Generated by Built In
RAVL helps technologists accelerate their careers.

At RAVL, we connect strategy with execution, care deeply about the people we work with, and measure success by the lasting impact we leave behind. Our purpose is to build a team that puts real, sustainable business outcomes at the core of everything we do.

We're here to leave our clients better than we found them—and to create a place where our people are proud to Build. Better.

About the Role

We're looking for a Senior / Principal AI Platform Engineer to build the secure, scalable platform capabilities that enable enterprise AI delivery across our clients' organizations.

This is a platform engineering role first, with an AI specialization. You'll build and operate the shared infrastructure, services, and runtime capabilities that allow engineering teams to securely deploy, govern, observe, and scale AI-powered applications in highly regulated financial services environments.

Rather than building individual business applications or developer tooling, you'll focus on the production AI platform itself—creating reusable services, operational excellence, and platform capabilities that other engineering teams depend on every day. As a Senior or Principal engineer, you'll influence platform architecture, establish engineering standards, and help shape RAVL's AI platform strategy.

What does success look like in this role?

  • Design, build, and operate reusable cloud platform capabilities using Infrastructure as Code, CI/CD, containers, Kubernetes, identity services, and cloud networking.
  • Develop shared AI platform services including model gateways, API gateways, inference routing, vector and retrieval services, evaluation pipelines, and policy enforcement capabilities.
  • Build highly reliable platform services with clear Service Level Objectives (SLOs), observability, tracing, monitoring, automated recovery, and operational excellence.
  • Design secure platform foundations that incorporate identity, secrets management, network security, data boundaries, auditability, governance, and controlled access to AI models and enterprise tools.
  • Treat the platform as a product by creating reusable APIs, templates, documentation, paved roads, and self-service capabilities that accelerate adoption across engineering teams.
  • Optimize platform performance, scalability, and cost through intelligent routing, caching, quotas, lifecycle management, versioning, and cloud resource optimization.
  • Establish operational standards for AI platform reliability, incident response, capacity planning, and continuous improvement.
  • Mentor engineers, lead architecture discussions, and contribute reusable capabilities that strengthen both client platforms and RAVL's AI engineering practice.
  • Partner with engineering, infrastructure, security, architecture, and client stakeholders to deliver scalable AI platform capabilities aligned with enterprise governance requirements.

Sounds great, but do my skills fit?

    We're looking for platform engineers with deep cloud infrastructure expertise and practical experience building modern AI-enabled platforms.

    Required

    • Strong experience designing and operating cloud platforms using Infrastructure as Code, Kubernetes, containers, and modern cloud-native architecture.
    • Deep experience building CI/CD pipelines, cloud networking, identity and access management, observability platforms, and site reliability engineering practices.
    • Experience designing highly available distributed systems with strong operational practices including SLOs, monitoring, tracing, incident response, and capacity planning.
    • Working knowledge of large language models, AI inference, agent architectures, and how to expose AI capabilities safely as reusable platform services.
    • Experience implementing secure data governance practices including privacy, lineage, lifecycle management, access controls, and scalable data processing.
    • Strong understanding of enterprise security, governance, cloud operations, and cost optimization within regulated environments.
    • Experience collaborating across engineering, platform, infrastructure, security, and architecture teams to deliver scalable shared services.
    • For Senior and Principal candidates, demonstrated experience leading platform architecture, establishing engineering standards, mentoring engineers, and driving adoption of enterprise platform capabilities.

Nice to Have Skills

  • Experience with Azure AI Foundry, Azure OpenAI, AWS Bedrock, Vertex AI, or other managed AI platforms.
  • Experience with service mesh technologies, API management platforms, GPU infrastructure, model serving frameworks, or vector databases.
  • Experience implementing policy-as-code, multi-tenant platform architectures, software supply chain security, or advanced FinOps practices.
  • Experience operating enterprise Kubernetes platforms at scale.
  • Cloud architecture, Kubernetes (CKA/CKAD), or related certifications.
  • Experience working within banking, insurance, wealth management, or other regulated industries.

Mindset Traits

  • You enjoy building platforms that enable others to move faster and safer.
  • You think in systems and design for long-term scalability, resilience, and operational excellence.
  • You balance engineering quality, security, reliability, and cost when making architectural decisions.
  • You communicate effectively across engineering, infrastructure, security, and executive stakeholders.
  • You enjoy solving complex platform challenges through thoughtful engineering and automation.
  • You mentor others and create reusable capabilities that raise the bar across engineering teams.
  • You're excited about shaping the future of enterprise AI infrastructure and platform engineering.

Why join RAVL?

  • Work alongside experienced consultants solving meaningful, enterprise-scale challenges.
  • Help build the AI platforms that power the next generation of enterprise software delivery.
  • Flexible, client-aligned hybrid work model—autonomy with accountability, adapting to client delivery needs.
  • Variable bonus & RRSP contributions tied to performance and delivery impact.
  • 4 weeks paid time off (plus public holidays).
  • Paid professional development days and continuous learning opportunities.
  • Comprehensive health & dental coverage, including mental health support.
  • Commitment to lifelong learning through mentorship, certifications, and continuous improvement.

Compensation & Hiring Process

This is a current permanent opportunity.

The salary range for this role is $120,000–$170,000 CAD, reflecting expected base pay. Total compensation may also include additional pay such as bonuses or incentives, depending on the position, and final offers are based on experience, skills, and qualifications.

As part of our hiring process, we may use technology, including AI-based tools, to help summarize and assess applications. These tools assist our team and do not replace human review or decision-making.

Equal Opportunity & Accessibility

RAVL is an equal opportunity employer committed to building a diverse, inclusive, and accessible workplace. We welcome applications from all qualified individuals and provide accommodations throughout the hiring process upon request.

Skills Required

  • Design and operate cloud platforms using Infrastructure as Code
  • Kubernetes and container platform experience
  • Build and maintain CI/CD pipelines
  • Cloud networking and identity/access management (IAM) experience
  • Observability platforms, monitoring, and tracing implementation
  • Site reliability engineering practices, SLOs, incident response, capacity planning
  • Working knowledge of large language models, AI inference, and agent architectures
  • Develop shared AI platform services (model gateways, API gateways, inference routing, vector/retrieval services)
  • Implement secure data governance (privacy, lineage, lifecycle, access controls)
  • Enterprise security, governance, and cloud cost optimization experience in regulated environments
  • Experience leading platform architecture, establishing engineering standards, and mentoring engineers
  • Experience with Azure AI Foundry, Azure OpenAI, AWS Bedrock, or Vertex AI
  • Experience with service mesh, API management, GPU infrastructure, model serving frameworks, or vector databases
  • Experience implementing policy-as-code, multi-tenant architectures, software supply chain security, or advanced FinOps
  • Cloud architecture or Kubernetes certifications (CKA/CKAD)
  • Experience operating enterprise Kubernetes platforms at scale
  • Experience working in banking, insurance, wealth management, or other regulated industries
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The Company
HQ: Toronto, Ontario
97 Employees
Year Founded: 2022

What We Do

RAVL was founded by four partners who believe that the key to building exceptional technology that stands the test of time is to build, train and mentor excellent Technologists for Financial Services clients. At RAVL, we are disrupting the Technology Services industry by building better technology and technologists. We specialize in full-stack architecture and development, core systems modernization, Microservices and APIs, DevSecOps & Developer experience, Cloud Platform & tooling, and Site Reliability Engineering. Build. Better.

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