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AI Engineer (FinOps)

  • Toronto, ON
  • On-site
  • Posted Sep 24, 2026
  • 1 position

$80–$120 / hour

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Employment type
Contract
Experience level
Senior · 5+ years
Posting language
English
Working hours
40 hours per week
Seniority
Mid-Senior level
Application method
Direct apply is available

Job summary

You will analyze AI and LLM consumption to optimize token usage and implement cost-effective model routing logic. Additionally, you will develop frameworks for usage tracking, cost attribution, and FinOps controls across business entities.

Job details

TekRek has partnered with a financial services organization that is expanding its AI enablement and platform engineering capabilities, with a growing focus on how model usage is measured, governed, and allocated across the business. As AI adoption increases, the team is putting stronger controls around model consumption, cost attribution, and usage visibility across a multi-entity operating structure. A focus on AI model governance throughout the platform. The Role This is a hands-on AI/Data FinOps contract focused specifically on the economics of deployed AI workloads. You will work across model routing, consumption tracking, cost allocation, and governance, helping engineering teams use the right models while giving leadership a clearer view of where AI spend is going. You should be coming from a strong data engineering and governance background. What You Will Do Analyze AI and LLM consumption to identify unnecessary token usage and cases where lower-cost models can handle the workload effectively. Build routing logic that directs requests to an appropriate model tier based on intent, rather than defaulting to higher-cost options. Develop usage tracking, cost attribution, and chargeback or showback reporting across separate business entities. Work with platform engineering and AI enablement teams to build FinOps controls into model deployment and release workflows. Improve monitoring around token usage, model consumption, cost trends, and access controls, including thresholds and guardrails where appropriate. What You Bring Hands-on FinOps experience focused specifically on AI or LLM workloads, including model, token, or compute economics. Experience with model gateways or routing approaches that match workloads to different model tiers. Practical experience building or operating consumption tracking, cost attribution, chargeback, or showback frameworks. Experience working with financial services cost and reporting requirements, including multi-entity or segregated business structures. Strong stakeholder communication skills, with the ability to turn technical cost data into clear decisions for engineering and business leaders. Why This Role The work sits directly between AI engineering, platform infrastructure, and financial governance. You will have a clear mandate to reduce avoidable model spend, improve how usage is allocated and reported, and put repeatable cost controls around a growing AI deployment environment.

What you’ll do

You will analyze AI and LLM consumption to optimize token usage and implement cost-effective model routing logic. Additionally, you will develop frameworks for usage tracking, cost attribution, and FinOps controls across business entities.

Requirements

The role requires hands-on experience in AI or LLM FinOps, specifically regarding compute economics and model routing. Candidates must possess a strong background in data engineering, governance, and the ability to communicate technical cost data to leadership.

Listed skills

  • Tracking · Preferred
  • Reporting · Preferred
  • Teams · Preferred
  • Technical · Preferred
  • Communication · Preferred
  • Communication Skills · Preferred
  • Leadership · Preferred
  • Organization · Preferred
  • Attention to detail · Preferred

Other relevant skills

Identified from the job description. Confirm important requirements above.

  • AI FinOps
  • LLM Consumption Analysis
  • Data Engineering
  • Model Governance
  • Cost Attribution
  • Model Routing
  • Platform Engineering
  • Token Usage Monitoring
  • Chargeback Reporting
  • Financial Services
  • Stakeholder Communication
  • Cloud Economics
  • Model Gateways
  • Guardrails

Job areas

  • Technology
  • Data & Analytics
  • Engineering
  • Finance & Accounting
  • Consulting

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