Associate Technical Architect - ML
- Canada
- Télétravail
- Publié 1 sept. 2026
- 1 poste
Ouvre un site externe
- Type d’emploi
- Temps plein
- Niveau d’expérience
- Chef d’équipe · 10+ ans
- Postuler avant le
- 1 oct. 2026
- Langue de l’offre
- anglais
- Heures de travail
- 40 heures par semaine
Résumé du poste
You will be responsible for designing and developing advanced machine learning models and algorithms to solve complex business problems. Additionally, you will optimize and deploy these models on AWS infrastructure while ensuring scalability and reliability.
Détails du poste
While technology is the heart of our business, a global and diverse culture is the heart of our success. We love our people and we take pride in catering them to a culture built on transparency, diversity, integrity, learning and growth. If working in an environment that encourages you to innovate and excel, not just in professional but personal life, interests you- you would enjoy your career with Quantiphi! About Quantiphi: Quantiphi is an award-winning, AI-First global digital engineering company that helps the world’s leading Fortune 1000 organizations transform bold ideas into measurable business impact. We go beyond building innovative AI technologies—we solve the problems that matter most to our clients. Since our founding in 2013, Quantiphi has built a proven track record of turning complex challenges into meaningful outcomes across industries. Headquartered in Boston, with more than 4,000 professionals worldwide, we partner with global enterprises to deliver large-scale digital, cloud, and AI-driven transformation. #SolvingWhatMatters. We are an Elite and Premier partner to Google Cloud, AWS, NVIDIA, Snowflake, and other leading technology platforms, and our work has been recognized across the industry, including: 21 Google Cloud Partner of the Year awards in the past 10 years 3 AWS AI/ML Partner of the Year awards 3 NVIDIA Partner of the Year awards 3 Snowflake Partner of the Year awards Rated Leaders by Gartner, Forrester, IDC, ISG, Everest Group and other leading analyst firms Quantiphi delivers First-in-class AI solutions across Life Sciences, Healthcare, Banking, Financial Services, CPG, Manufacturing, Energy, High-Tech, Telecommunications, etc., powered by cutting-edge Generative AI and Agentic AI accelerators. We are also proud to be certified as a Great Place to Work—reflecting our commitment to our people and our culture. For more details, visit: Website or LinkedIn Page Role: Architect - Machine Learning Experience Level: 8+ years Employment type: Full Time Location: Remote (Canada) What you will do: As an Architect, Machine Learning Engineer at Quantiphi, you will be responsible for designing and developing advanced machine learning models and algorithms to solve complex business problems. You will work on optimizing and deploying these models on AWS infrastructure, ensuring scalability and reliability. Basic Qualifications (BQ): 8+ years of relevant hands-on technical experience implementing, and developing cloud ML solutions on AWS. Hands-on experience on AWS Machine Learning services. Proven experience using AWS Sagemaker leveraging different types of data sources, Training jobs, real-time and batch Inference, and Processing Jobs. Good Experience developing applications using LLMs with Langchain. Must have experience using GenAI frameworks such as vertexAI, OpenAI, AWS Bedrock. Must have Hands-on experience fine-tuning large language models( LLM) and Generative AI (GAI), specifically LLama2. Must have Hands-on experience working with (Retrieval Augmented Generation) RAG architecture and experience using vector indexing such as Opensearch, Elasticsearch. Strong familiarity with higher-level trends in LLMs and open-source platforms. Should have experience with Deep Learning Concepts. Transformers, BERT, Attention models Prompt Engineering: Engineer prompts and optimize few-shot techniques to enhance LLM's performance on specific tasks, e.g. personalized recommendations. Model Evaluation & Optimization: Evaluate LLM's zero-shot and few-shot capabilities, fine-tuning hyperparameters, ensuring task generalization, and exploring model interpretability for robust web app integration. Response Quality: Collaborate with ML and Integration engineers to leverage LLM's pre-trained potential, delivering contextually appropriate responses in a user-friendly web app. Implement and manage MLOps principles and best practices for Gen AI models Thorough understanding of NLP techniques for text representation and modeling Able to effectively design software architecture as required Experience with at least one of the workflow orchestration tools, Airflow, StepFunctions, SageMaker Pipelines, Kubeflow etc.Knowledge of a variety of machine learning techniques (Supervised/unsupervised etc.) (clustering, decision tree learning, artificial neural networks, etc.) and their real-world advantages/drawbacks Ability to create end to end solution architecture for model training, deployment and retraining using native AWS services such as Sagemaker, Lambda functions, etc. Ability to collaborate with cross-functional teams such as Developers, QA, Project Managers, and other stakeholders to understand their requirements and implement solutions. What is in it for you: Join one of the world’s fastest-growing AI-first digital engineering companies and make a real impact at scale. Lead and collaborate with a high-energy team of talented, driven individuals solving complex, meaningful challenges. Work with Fortune 500 companies and disruptive innovators in a research-driven environment with 60+ patents. Stay ahead of the curve by gaining hands-on experience with cutting-edge AI, ML, data, and cloud technologies while continuously upskilling. If you like wild growth and working with happy, enthusiastic over-achievers, you'll enjoy your career with us!
Ce que vous ferez
You will be responsible for designing and developing advanced machine learning models and algorithms to solve complex business problems. Additionally, you will optimize and deploy these models on AWS infrastructure while ensuring scalability and reliability.
Exigences
Candidates must have 8+ years of hands-on experience in developing cloud ML solutions on AWS, specifically with Sagemaker and GenAI frameworks. Proficiency in LLMs, RAG architecture, and MLOps principles is essential for this role.
Avantages
• Learning and growth opportunities • Diverse and inclusive culture • Remote work flexibility
Compétences indiquées
- prompt engineering · Souhaitée
Autres compétences pertinentes
Relevées dans la description du poste. Confirmez les exigences importantes ci-dessus.
- AWS Machine Learning
- AWS Sagemaker
- Generative AI
- LLMs
- Langchain
- VertexAI
- AWS Bedrock
- Fine-tuning
- RAG architecture
- Vector indexing
- Deep Learning
- Transformers
- Prompt Engineering
- MLOps
- NLP
- Software architecture
- Design Software
- AWS SageMaker
- Transformer (Machine Learning Model)
- Agentic AI
- Business Problems
- Pipelines
- Energetic
- BERT (NLP Model)
- MLOps (Machine Learning Operations)
- Generative Artificial Intelligence
- LangChain
- Workflow Management
- Apache Airflow
- Retrieval Augmented Generation
- Snowflake (Data Warehouse)
- Google Cloud Platform (GCP)
- Edge Intelligence
- Kubeflow
- Upskilling
- Research
- Artificial Intelligence
- Algorithms
- Amazon Web Services
- Artificial Neural Networks
- Telecommunications
- Business Continuity Planning
- Elasticsearch
- Financial Services
- Scalability
- Innovation
- Life Sciences
- Machine Learning
- Project Management
- Safety Assurance
Domaines d’emploi
- Technology
- Software
- Data & Analytics
- Engineering
- Consulting
- Technical Architect Manager
- Machine Learning Engineer
- Software Developers
- Computer and Information Research Scientists
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