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ML Ops Engineer
5 hours ago
Our Data Science team are a highly motivated and curious group. They're spearheading Achievers' efforts to build products powered by AI and enjoy solving all the problems that come with building at scale. We don't operate under a rigid structure, as a member of this team, you'll have the opportunity to shape the work and the craft.
We're in search of a skilled and driven ML Ops engineer who can support the full operational lifecycle of both traditional machine learning systems and emerging generative AI driven applications. This role spans infrastructure, automation, quality and reliability engineering, with an emphasis on enabling scalable training, evaluation, deployment, and monitoring for a wide range of ML and GenAI workloads, including managing model upgrades, framework versions, regression testing, maintenance tasks and maintaining performance across systems and solutions.
Why you'll love this role:- Lead high-impact initiatives that shape how millions of people experience work around the world.
- Bring your unique perspective to complex and challenging projects - apply your expertise in data science, influence technical direction, and share your knowledge with fellow team members.
- Join a close-knit, no-ego, high-performing team that solves meaningful problems and celebrates successes together.
- Work alongside an experienced leadership team who is genuinely invested in your career growth.
- Thrive in a fast-paced, high-growth environment where innovation is encouraged and your voice truly matters.
- This role will work extensively with Google Cloud's AI/ML ecosystem, including Vertex AI (ML and GenAI), managed pipelines, vector databases, embeddings workflows, and model optimization tools.
- Deploy and operate ML models and LLMs using Vertex AI, Cloud Run, and GKE.
- Automate packaging, versioning, and release of models, prompts, embeddings, and related artifacts.
- Design scalable inference architectures (sync, async, agentic), including batching and GPU/TPU autoscaling.
- Build and maintain ML and GenAI workflows using Vertex AI Pipelines, Cloud Composer (Airflow), or custom orchestration.
- Implement CI/CD for ML code and GenAI artifacts (prompts, fine-tuned models, evaluation suites).
- Add automated validation for data quality, model performance, regression, and LLM evaluation metrics.
- Implement quality gates in production pipelines, imagining and implementing tests that will gate deployment changes and identify production issues.
- Schedule retraining, re-embedding, and re-indexing to ensure model freshness.
- Manage and version prompts, system instructions, RAG components, and agent workflows.
- Operationalize fine-tuned or custom models using Vertex AI tuning capabilities.
- Implement safety guardrails, filtering, and approval workflows for generative systems.
- Enable experimentation across prompts, models, and RAG strategies.
- Build scalable training and inference environments using GCP services (Vertex AI, BigQuery ML, Dataflow/Dataproc, Cloud Storage, Cloud Run/GKE).
- Manage infrastructure as code using Terraform or Deployment Manager.
- Apply cost optimization, reliability, and scaling best practices.
- Monitor model, data, and embedding drift.
- Track LLM-specific metrics (latency, cost, prompt performance, safety triggers).
- Implement logging, lineage, and metadata using Vertex ML Metadata and Cloud Logging.
- Embed AI governance controls (explainability, bias, performance, data usage).
- Support audit-ready workflows with model cards, prompt cards, and evaluation documentation.
- Align operational practices with emerging external AI regulations and frameworks (e.g., responsible AI, model risk management, audit readiness).
- Partner with security, legal, privacy, and risk teams to operationalize AI governance without slowing experimentation.
- Partner with data scientists, GenAI engineers, product managers, and engineers to deliver production-ready ML systems.
- Promote best practices for reliable, scalable, and governed ML and GenAI operations.
- Experience in MLOps, ML platform engineering, or cloud-based AI infrastructure.
- Strong hands-on experience with GCP, especially Vertex AI (ML & GenAI), BigQuery/BigQuery ML, Cloud Run or GKE, and Cloud Composer.
- Strong Python skills with experience in testing, CI/CD, containerization, and infrastructure automation (Terraform).
- Experience with LLM workflows: embeddings, vector databases, prompt engineering, and evaluation.
- Exposure to agentic workflows and frameworks such as MCP.
- Familiarity with Vertex AI Model Garden, tuning, monitoring, and vector search technologies.
- Exposure to LLM safety, moderation, or red-teaming workflows.
- Strong communication and cross-functional collaboration skills.
- Detail-oriented, reliability-focused mindset.
- Comfortable working in fast-evolving environments.
- Strong sense of ownership and accountability.
Why Achievers is a Great Place to Work
At Achievers, we believe recognition is a powerful driver of connection. With more than 4.3 million users across 190 countries, our employee recognition and rewards platform empowers organizations to build cultures where people feel seen and valued, everyday. We're a team of passionate, thoughtful builders who care deeply about our product, our customers, and each other. Visit to see how we're inspiring recognition everywhere.
Our Approach to Total Rewards
$107,000 - $145,000 reflects the salary range for this role, depending on experience, skills, and market data. We're committed to providing a fair and competitive offer based on what you bring to the team. Each A-Players' compensation is reviewed at least annually against performance and impact in role. We want you to see your path to growth, understand your impact, and feel valued every step of the way.
Benefits and Perks for permanent full-time employees:
Rewards for your impact through our Recognition and Rewards program
Health Benefits and Life Insurance Coverage beginning on your first day
Parental Leave Top-up
Employer matched RRSP contributions
Flexible Vacation to recharge, so you can bring your best
Employee and Family Assistance Program offering mental health, legal, and financial counselling
Supported professional development and career growth (Linkedin Learning, mentorship)
Employee-Led Employee Resource Groups that celebrate our diversity
Regular events designed to build connection, belonging, and well-being
Hybrid flexibility, with time in our beautiful Liberty Village, Toronto office
Achievers is proud to be an equal opportunity employer committed to building a diverse, inclusive workplace where everyone can do their best work. We encourage qualified candidates from all backgrounds and experiences to apply.
Achievers is committed to ensuring an inclusive and accessible recruitment process for all candidates. If you require any accommodations for your interview, such as assistive technology, wheelchair accessibility, or alternative formats of materials, please let us know. We are happy to make necessary arrangements to support your needs.