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Remote Amazon Automation Engineer Jobs in Toronto, ON

Vancouver, BC preferred, considering the rest of Canada (Remote-friendly) Industry: Web3 ... and Amazon. Using account abstraction and AI-powered financial copilots, the platform makes ...

Vancouver, BC preferred, considering the rest of Canada (Remote-friendly) Industry: Web3 ... and Amazon. Using account abstraction and AI-powered financial copilots, the platform makes ...

This is a full-time remote role working in Canada, Monday to Friday, with significant overlap with ... Amazon Simple Queue Service * Snowflake * Metabase * Environment & Infrastructure: * GitHub

Senior Platform Engineer

Toronto, ON · On-site +1

CA$100K - CA$150K/yr

Additionally, using automation and other technologies to intelligently cope with challenging ... Experience with Amazon Web Services including EC2, RDS, Dynamo DB, Route53, Elastic Load Balancers ...

Remote role in the US, Canada or Europe Role Overview ???? At Uncapped, we help ambitious founders ... We work with some of the largest global e-commerce platforms -- including Amazon and Walmart -- and ...

Remote role in the US, Canada or Europe Role Overview At Uncapped, we help ambitious founders ... We work with some of the largest global e-commerce platforms - including Amazon and Walmart - and ...

Infrastructure Engineer

Toronto, ON · Remote

CA$140K - CA$240K/yr

... agents, automation tools, and rapid prototyping workflows to improve delivery speed and ... This is a fully remote position that offers a competitive salary range of $140,000 to $240,000 USD ...

25-026 DevOps Engineer

Toronto, ON · Remote

CA$80 - CA$100/hr

... Remote) Job Overview We are seeking a skilled DevOps Engineer to support our data analytics ... The ideal candidate will bring expertise in cloud-based DevOps, data pipeline automation, and ...

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Remote Amazon Automation Engineer information

What is the difference between Remote Amazon Automation Engineer vs Remote Amazon Web Services (AWS) Cloud Engineer?

AspectRemote Amazon Automation EngineerRemote Amazon Web Services (AWS) Cloud Engineer
CertificationsAmazon Scripting & Automation tools, AWS certificationsAWS certifications, cloud architecture
Work EnvironmentAutomation tasks, scripting, process optimizationCloud infrastructure, deployment, and management
Employer & Industry UsageE-commerce, retail, logistics companies using Amazon platformsTech companies, startups, enterprises utilizing AWS cloud services
Search & Comparison IntentFocus on automation of Amazon-specific processesFocus on cloud infrastructure and services on AWS

The Remote Amazon Automation Engineer primarily focuses on automating Amazon platform processes using scripting and automation tools, often within e-commerce or logistics sectors. In contrast, the Remote AWS Cloud Engineer specializes in managing and deploying cloud infrastructure on AWS. Both roles require AWS certifications but differ in daily tasks and industry focus.

What are the key skills and qualifications needed to thrive as a Remote Amazon Automation Engineer, and why are they important?

To thrive as a Remote Amazon Automation Engineer, you need a strong background in software engineering, scripting languages (such as Python or Java), and experience with automation frameworks, preferably with a degree in computer science or related field. Familiarity with Amazon Web Services (AWS), tools like Selenium, Jenkins, and CI/CD pipelines, as well as relevant certifications such as AWS Certified DevOps Engineer, is highly valued. Excellent problem-solving abilities, clear communication, and the ability to work independently are crucial soft skills for remote collaboration and troubleshooting. These competencies ensure efficient automation of workflows, minimize errors, and enable seamless integration and deployment in a fast-paced cloud environment.

How does a Remote Amazon Automation Engineer typically collaborate with cross-functional teams to optimize e-commerce operations?

As a Remote Amazon Automation Engineer, you'll regularly coordinate with teams such as operations, product management, and customer support to streamline and automate various Amazon processes. This often involves virtual meetings, shared project management tools, and clear documentation to ensure alignment across different time zones. Effective communication and proactive status updates are key, as you'll need to translate technical automation solutions into actionable steps for non-technical stakeholders. Collaboration also extends to troubleshooting issues, optimizing workflows based on feedback, and ensuring automation aligns with Amazon's compliance and best practices.

What is a Remote Amazon Automation Engineer?

A Remote Amazon Automation Engineer is a professional who designs, develops, and maintains automated systems and processes specifically for Amazon's platforms, such as Amazon Web Services (AWS) or Amazon's e-commerce infrastructure. They work remotely to ensure that repetitive tasks, data integrations, and various workflows run smoothly and efficiently, often using tools like AWS Lambda, CloudFormation, and APIs. Their work helps organizations scale their operations, reduce errors, and optimize their use of Amazon technologies. This role requires strong programming skills, experience with cloud computing, and a solid understanding of Amazon’s services and automation best practices.
What are the most commonly searched types of Amazon Automation Engineer jobs in Toronto, ON? The most popular types of Amazon Automation Engineer jobs in Toronto, ON are:
What are popular job titles related to Remote Amazon Automation Engineer jobs in Toronto, ON? For Remote Amazon Automation Engineer jobs in Toronto, ON, the most frequently searched job titles are:
What job categories do people searching Remote Amazon Automation Engineer jobs in Toronto, ON look for? The top searched job categories for Remote Amazon Automation Engineer jobs in Toronto, ON are:
Applied AI Engineer (Automation)

Applied AI Engineer (Automation)

Fusemachines

Toronto, ON • Remote

Contractor

Posted 17 days ago


Job description

About Fusemachines

Fusemachines is a leading AI strategy, talent, and education services provider. Founded by Sameer Maskey Ph.D., Adjunct Associate Professor at Columbia University, Fusemachines has a core mission of democratizing AI. With a presence in 4 countries (Nepal, the United States, Canada, and the Dominican Republic) and more than 450 full-time employees, Fusemachines brings global AI expertise to transform companies worldwide. Founded in 2013, Fusemachines is a global provider of enterprise AI products and services, on a mission to democratize AI. Leveraging proprietary AI Studio and AI Engines, the company helps drive the clients’ AI Enterprise Transformation, regardless of where they are in their Digital AI journeys. With offices in North America, Asia, and Latin America, Fusemachines provides a suite of enterprise AI offerings and specialty services that allow organizations of any size to implement and scale AI. Fusemachines serves companies in industries such as retail,  manufacturing, and government.

Fusemachines continues to actively pursue the mission of democratizing AI for the masses by providing high-quality AI education in underserved communities and helping organizations achieve their full potential with AI.
Type: Full-Time, Remote

Role Overview

As an Applied AI Engineer(Automation), you will deliver high-impact AI and automation solutions for clients—owning work from requirements discovery through prototype and production deployment. You’ll build reliable, maintainable systems that integrate LLMs into real business workflows via APIs, automation platforms, and backend services.

This is a mid-to-senior individual contributor role. You’ll collaborate closely with Solutions Architects, Delivery/Engagement leads, and Product Managers to scope, build, ship, and iterate on client solutions.

Key Responsibilities
  • Design & Deploy: Design, develop, and deploy tailored AI and automation solutions aligned to client objectives.
  • Build Workflows & Services: Translate business problems into production-grade AI workflows and services using Python, automation tools (n8n/Make/Zapier or similar), and LLM platforms/APIs (e.g., OpenAI, IBM watsonx.ai, Amazon Bedrock), plus retrieval systems.
  • Agentic Systems: Build and deploy agentic workflows using LangChain, LangGraph, and Google ADK, including tool calling and structured outputs.
  • Retrieval & Knowledge Systems: Implement RAG pipelines using vector databases and search technologies (e.g., Pinecone, Elasticsearch, pgvector) and graph databases when appropriate.
  • Prototype → Production: Ship fast prototypes, then harden them into scalable systems (testing, reliability, deployment, monitoring) independently or with a team.
  • Client Partnership: Participate in discovery, run technical calls/demos when needed, and communicate tradeoffs clearly to client and internal stakeholders.
  • Ongoing Support & Iteration: Improve deployed solutions through feature work, bug fixes, monitoring, prompt/model improvements, and additional automations.
  • Documentation: Produce clear technical documentation, client demos, and internal playbooks to enable reuse and scalability.
  • Continuous Learning: Stay current on LLM tooling and delivery best practices to improve quality and speed.
Success in This Role Looks Like
  • Solutions consistently meet or exceed client expectations and show measurable impact (time saved, cost reduced, improved conversion/deflection, faster cycle time).
  • Clients trust you as a go-to engineering partner and expand usage of deployed AI workflows.
  • Deliveries are production-ready: monitored, testable, documented, and maintainable.
Required Qualifications
  • 3–8 years of software or AI engineering experience (mid-to-senior).
  • 2–3+ years of AI Automation, Generative AI, or Agentic AI (mid-to-senior).
  • Strong Python engineering skills and experience building APIs/services (e.g., FastAPI).
  • Hands-on experience integrating LLMs (e.g., OpenAI APIs or equivalents), including prompt design, structured outputs, and basic evaluation practices.
  • Experience with at least one workflow automation platform (n8n, Make, Zapier, or similar) and building reliable integrations.
  • Familiarity with RAG fundamentals and retrieval systems (embeddings, vector search); exposure to vector databases and/or Elasticsearch.
  • Production engineering fundamentals: Docker, cloud deployment (AWS/GCP/Azure/IBM), and experience with async/queuing patterns (e.g., Celery, Redis, Kafka).
  • Comfort operating in a client-facing environment: technical calls, demos, and collaborating with cross-functional stakeholders.
Preferred Qualifications
  • Experience with fine-tuning LLMs or other ML models; broader ML exposure is a plus (not required).
  • Familiarity with observability and tracing (e.g., LangSmith, OpenTelemetry) and prompt/version lifecycle management.
  • Experience with graph databases / knowledge graphs.
  • Familiarity with data governance and AI governance concepts (PII handling, auditability, access controls, risk awareness).
  • Prior consulting experience or work in fast-paced startup environments.
Fusemachines is an Equal Opportunities Employer, committed to diversity and inclusion. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, or any other characteristic protected by applicable federal, state, or local laws.

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