Lead Machine Learning Engineer

The Consensus

Toronto

On-site

CAD 150,000 - 210,000

Full time

14 days+

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Benefits offered by this job

Equity package
Premium benefits

Job summary

Saris AI is seeking an ML Engineering Lead to own and shape the ML/AI function across the company, building scalable agentic systems for real-world banking workflows.

Ideal candidates have 8+ years in ML/AI with leadership, deep experience with LLMs, and a strong track record in end-to-end deployment, evaluation, and productionization within ambiguous, early-stage environments. Equity and premium benefits offered.

Qualifications

  • 8+ years in ML/AI engineering with leadership experience.
  • Proven end-to-end ML project leadership.
  • Deep experience with LLMs or agentic systems.
  • Strong communication and ownership in early-stage settings.

Responsibilities

  • Own and lead ML/AI function end-to-end, setting technical direction and standards across the company.
  • Architect and guide the development of multi-modal, agentic AI systems powering real-world workflows.
  • Define and oversee evaluation frameworks, datasets, and performance metrics to continuously improve agent quality.
  • Drive productionization of ML systems, ensuring reliability, scalability, and compliance in real-world environments.
  • Build and mentor a high-performing ML team over time, setting best practices across modeling, experimentation, and deployment.

Skills

ML engineering
Technical leadership
LLMs / agentic systems
Production ML systems
Model evaluation

Tools

LLMs
RAG pipelines
ML monitoring

Job description

About Saris AI

We're a San Francisco, Montreal and Toronto based applied AI startup that’s building the future of work in the banking industry. We are tackling a $100 billion/yr problem, doubling every quarter and pushing the boundaries of what’s possible with multi-turn AI agentic systems

Our goal is to tackle the type of automation problems that require long-context reasoning, tool orchestration across legacy systems, and strict compliance loops: the ones without known answers.

We’ve shipped real agents that handle real customer workflows in production. With a growing customer base and live deployments, we’re scaling up fast and looking for deeply technical builders who want to have outsized impact early.

Our core engineering team is looking for a hands-on ML Engineering Lead who thrives in early-stage, ambiguous environments. You’ve led ML systems from v1 to scale, and enjoy defining both the technical direction and the systems that power them.

Your mission is to
  • Own and lead the ML/AI function end-to-end, setting technical direction and standards across the company

  • Architect and guide the development of multi-modal, agentic AI systems powering real-world workflows

  • Define and oversee evaluation frameworks, datasets, and performance metrics to continuously improve agent quality

  • Drive productionization of ML systems, ensuring reliability, scalability, and compliance in real-world environments

  • Build and mentor a high-performing ML team over time, setting best practices across modeling, experimentation, and deployment

Who You Are
  • 8+ years of experience in ML/AI engineering, including time as a technical lead or manager

  • Proven track record of leading ML initiatives end-to-end, from problem definition → production deployment

  • Deep experience with LLMs and/or agentic systems, ideally in real-world, customer-facing applications

  • Strong understanding of ML fundamentals (deep learning, transformers, model evaluation, tradeoffs)

  • Experience scaling ML systems in production, including monitoring, iteration, and reliability

  • Demonstrated ability to lead engineers, influence architecture decisions, and drive technical direction

  • Comfortable operating in early-stage, ambiguous environments with high ownership

  • Strong communication skills with the ability to translate complex ML concepts into clear decisions

Bonus Points If You
  • Have experience building agentic systems, orchestration layers, or long-context reasoning systems

  • Are comfortable across the stack (data → modeling → infra → APIs)

  • Have worked with both open-source and closed LLMs, including fine-tuning or retrieval systems (RAG)

  • Have a strong product mindset and care deeply about real-world impact, not just model performance

Why Join Saris AI?
  • Join us in building the future of work for the trillion-dollar banking industry using cutting edge AI technology.

  • Tackle ambiguous technical challenges with no clear answers.

  • Competitive compensation with premium benefits and equity package.

  • Work with a stellar team of engineers, builders, and leaders; including repeat YC founders with a successful exit (Ready Education).

  • We already have production agents live with revenue-generating customers

  • Our team is backed by Tier 1 Silicon Valley VCs

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