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IT Services, Consulting

Senior AI Engineer

Mississauga, Ontario, CanadaOnsiteFull TimeSeniorPosted 2 months ago

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Role summary

We are seeking a Senior AI Engineer with 8-10 years of experience in application development or systems analysis. The role requires strong foundational knowledge in Generative AI (GenAI), Machine Learning (ML), Data Science, Statistics, and AI fundamentals, including NLP, Neural Networks, and LLMs. You will have extensive hands-on experience with leading LLMs, RAG pipelines, and deploying LLM-based applications using platforms like Vertex AI and Hugging Face. Proficiency in Python and its associated libraries (Pandas, NumPy, PyTorch, TensorFlow, LangChain, LlamaIndex) is essential. Experience with MLOps, CI/CD, containerization (Kubernetes/OpenShift), and vector databases is critical for deploying GenAI models to production environments. This role involves working with cross-functional teams on complex, ambiguous problems.

Senior AI Engineer

Location - Mississauga, Ontario, Canada

Job Desription:

  • 8-10 years of relevant experience in Apps Development or systems analysis role
  • Core AI/ML Foundations:
  • Strong foundational knowledge in GenAI , Machine Learning (ML modeling), Data Science, Statistics, and AI fundamentals, including Natural Language Processing (NLP), Neural Networks, and Large Language Models (LLMs).
  • Generative AI & LLM Expertise:
  • Extensive hands-on experience

with leading LLMs such as Google Gemini, OpenAI models, Anthropic Claude, Mistral, Llama, and various other open-source LLMs.
- Critical:

Deep working knowledge and hands-on experience with Retrieval-Augmented Generation (RAG) pipelines, including advanced RAG techniques and their detailed implementation.
- Proven ability to build, tune, and deploy LLM-based applications using platforms like Vertex AI, Hugging Face, etc.
- Expertise in developing robust prompt engineering strategies, prompt tuning, and creating reusable prompt templates.
- Hands-on experience with agentic framework-based use case implementation.
- Working knowledge of Guardrails and methodologies for assessing the performance and safety of GenAI features.
- Programming & Data Engineering:
- Strong programming proficiency in
Python is a must,

including extensive experience with libraries such as Pandas, NumPy, scikit-learn, PyTorch, TensorFlow, Transformers, FastAPI, Seaborn, LangChain, and LlamaIndex.
- Proficiency in integrating generative AI with enterprise applications using APIs, knowledge graphs, and orchestration tools.
- Hands-on experience with various vector databases (e.g., PG Vector, Pinecone, Mongo Atlas, Neo4j) for efficient data storage and retrieval.
- Experience in dealing with large amounts of unstructured data and designing solutions for high-throughput processing.
- Deployment & MLOps:
- Critical:

Hands-on experience deploying GenAI-based models to production environments.
- Strong understanding and practical experience with MLOps principles, model evaluation, and establishing robust deployment pipelines.
- Strong expertise in CI/CD principles and tools (e.g., Jenkins, GitLab CI, Azure DevOps, ArgoCD) for automated builds, testing, and deployments.
- Cloud & Containerization:
- Proven experience with container orchestration platforms like OpenShift or Kubernetes for deploying, managing, and scaling containerized applications in a cloud-native environment.
- Soft Skills:
- Strong problem-solving abilities, excellent collaboration skills for working effectively with cross-functional teams, and the capability to work independently on complex, ambiguous problems.

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