AI Engineer (Montreal)

AI Engineer (Montreal)

17 Aug
|
LGS
|
Montreal

17 Aug

LGS

Montreal

Join our teamJoin our team as an AI Engineer. Your Responsibilities:

- Implement automated MLOps pipelines (CI/CD, data, training).
- Implement ETL pipelines for data ingestion.
- Containerize and deploy models into production.
- Continuously monitor models (drift detection, alerting).
- Manage model and data versioning to ensure reproducibility.
- Apply governance principles (bias, privacy, transparency).
- Collaborate with data scientists to transform prototypes into stable services.
- Write optimized prompts and conduct comparative evaluations of models.

You Stand Out

With

- Languages & Libraries: Proficiency in Python + AI libraries (Pandas, Huggingface, OpenAI, etc.) and experience with Java and JavaScript.
- AI Agentic Frameworks: Experience with techniques such as multi-agent systems, ReAct, function Autogen, LangGraph, CrewAI, Chainlit, Streamlit, n8n, Google ADK.
- Knowledge of LLM and LFM Models: Familiarity with proprietary models (OpenAI, Claude, Gemini, etc.) and open-source models on HuggingFace.
- Data Science: Solid general understanding of data science techniques and their pipelines.
- Software Architecture:



Understanding of distributed systems architecture, microservices, APIs (e.g., REST).
- Cloud Computing: Experience with AWS Bedrock, Azure AI Foundry, GCP Vertex AI.
- DevOps / MLOps:

o Deployment via CI/CD, containers (Docker, Kubernetes), cloud, and automated pipelines.

o Automation of ML workflows (preprocessing, training, evaluation, deployment).

o Versioning of models/data/experiments (MLflow, DVC, etc.).

o Monitoring of models in production (drift, latency, performance, business metrics).

- Governance & Compliance: Knowledge of ethics, bias, GDPR, explainability, privacy, AI risks.
- Prompt Engineering & Model Benchmarking: Ability to formulate effective prompts, compare models, test, and select for specific tasks.
- Deployment & Integration: Packaging models, production deployment (API, microservices), backend/legacy integration.
- Communication: Collaborate with data, product, and infrastructure teams; clearly explain AI challenges. #CICJOBS #IBMJOBS

📌 AI Engineer (Montreal)
🏢 LGS
📍 Montreal

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