Senior Forward Deployed Engineer - AI & Kubernetes
Tech Talent International- Location
- Location not stated
- Workplace
- —
- Employment
- —
- Salary
- USD 140,000–160,000/yr
Senior Forward Deployed Engineer - AI & Kubernetes - Tech Talent International | Career Page
Senior Forward Deployed Engineer - AI & Kubernetes
Toronto, ON, Canada
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Job Openings Senior Forward Deployed Engineer - AI & Kubernetes
About the job Senior Forward Deployed Engineer - AI & Kubernetes
Tech Talent International (TTI) supplies technical talent to a variety of clients ranging from Fortune 100/500/1000 companies to startups, small and mid-sized organizations in Canada/US. We are currently hiring Senior Forward Deployed Engineer - AI & Kubernetes for our client in the Toronto area, which specializes in OS and secure toolkit development for AI and data stacks.
Role
Senior Forward Deployed Engineer - AI & Kubernetes
Type
Fulltime, Perm
Salary Range
$140,000 - $160,000 as base salary depending on overall experience + stock options + benefits + unlimited vacation days
Location
Onsite - downtown Toronto, ON, Canada
We are seeking a senior Forward Deployed Engineer to join our clients' Platform team and work directly with strategic customers to turn business problems into production AI and data systems.
This is a highly technical, customer-facing role for someone who can move between customer conversations, system design, data engineering, AI application development, Kubernetes, cloud infrastructure, and production support.
In this role, you will own the path from discovery to production: understanding the customer's workflows and data, designing the solution, building and deploying it, and helping the customer adopt it in real operations.
This is an outcome-based engineering role. A successful engagement is not a demo, a prototype, or an installation. It is a live, governed, adopted workflow that improves how the customer operates and is tied to a clear business result.
Responsibilities
Embed with customer teams to understand business problems, workflows, data systems, constraints, and success metrics.
Define what success looks like for each engagement, including the target outcome, adoption path, production boundary, and measurable impact.
Translate ambiguous customer needs into clear technical scopes, architectures, implementation plans, and production outcomes.
Build and deploy AI and data applications on the platform, including agentic workflows, RAG systems, data pipelines, integrations, evaluations, and operational automation.
Design and implement production data workflows across enterprise environments,including ingestion, transformation, orchestration, data quality, access control, and observability.
Deploy and operate the platform in complex customer environments, including cloud, hybrid, on-prem, private cloud, and air-gapped infrastructure.
Work hands-on with Kubernetes, containers, networking, storage, identity, secrets, observability, and production troubleshooting.
Partner with customer engineering, platform, data, and security teams to get systems live, governed, adopted, and measurable.
Participate in PagerDuty-based production support for customer deployments, including incident response, escalation, root-cause analysis, and follow-up remediation.
Turn customer-specific work into reusable patterns, playbooks, templates, and product feedback for the company
Qualifications
8+ years of experience across software, data, platform, infrastructure, or AI engineering roles, including:
3+ years building LLM/AI applications such as RAG, agents, evaluations,
workflow automation, or production AI systems.
5+ years working with Kubernetes and cloud-native infrastructure in production environments.
Strong experience with major cloud platforms such as AWS, Azure, or GCP.
Strong data engineering background, including pipelines, orchestration, transformation, data quality, access controls, and production data workflows.
Experience with a modern data stack such as Spark, Airflow, Databricks, Snowflake, or similar.
Experience building or deploying AI, data, or automation solutions in highly regulated or operationally complex industries, such as financial services, government, healthcare, energy, agriculture, supply chain, or industrial operations.
Ability to apply AI to real-world operational data, such as sensor data, geospatial data, logistics data, ERP data, field operations data, or forecasting data.
Proficiency in at least one production programming language such as Python, Go, TypeScript, Java, or Scala.
Strong systems thinking across data, users, permissions, workflows, infrastructure, governance, and business processes.
Excellent customer-facing communication skills with engineers, operators, security teams, executives, and business owners.
Strong ownership mindset
you care about production rollout, adoption, reliability, operational handoff, and measurable impact.
Willingness to travel to customer sites as needed.
A Plus
Experience in a forward deployed, professional services, solutions architecture, customer engineering, field engineering, or technical consulting role.
Experience delivering outcome-based customer engagements where success was measured by adoption, operational improvement, or business impact.
Experience with data engineering, machine learning, or data science workflows, including feature engineering, model training, experimentation, evaluation, or production ML systems.
Experience with on-prem, private cloud, regulated, hybrid, or air-gapped deployments.
Experience with infrastructure-as-code and production operations.
Experience working with enterprise security, compliance, audit, access control, and governance requirements.
Experience integrating AI or data systems with enterprise applications, internal APIs, data platforms, or customer-specific operational tools.
Experience leading senior technical stakeholders through architecture reviews, security reviews, implementation planning, and production-readiness decisions.
Ability to identify repeatable product and service opportunities from customer-specific implementations.
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Share
- Line
- X (Formerly Twitter)
Skills
- Kubernetes
- Retrieval-Augmented Generation
- PagerDuty
- LLM
- AWS
- Azure
- GCP
- Spark
- Airflow
- Databricks
- Snowflake
- Python
- Go
- TypeScript
- Java
- Scala
- Machine Learning
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