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LatentView Analytics

Toronto / Global

AI Software & Platform Engineer

Job Description

LatentView Analytics is a global data analytics and AI solutions company that partners with Fortune 500 and high-growth clients to turn data into competitive advantage. Our teams combine deep technical expertise with business context to ship measurable outcomes — not just models and dashboards — across industries.

Role Overview

We are looking for an AI Software & Platform Engineer to help build, deploy, operate, and integrate AI-powered applications and services.

The ideal candidate is a strong software/platform engineer with significant hands-on experience in Python, Kubernetes, Docker, backend systems, and production environments . The role sits at the intersection of software engineering, platform engineering, AI infrastructure, and data engineering . We are therefore looking for engineers with strong technical fundamentals who can learn new technologies quickly and adapt their skills as project requirements evolve.

Key Responsibilities

Build and maintain backend services supporting AI-powered applications.

Develop APIs and integrations between applications, services, and data systems.

Containerize and deploy applications using Docker and Kubernetes.

Develop and maintain CI/CD workflows.

Support application deployment, monitoring, reliability, and troubleshooting.

Work with engineering teams to improve scalability, reliability, and operational efficiency.

Integrate AI agents and LLM-powered applications with backend services and data sources.

Develop and maintain data integrations and pipelines as project needs evolve.

Troubleshoot issues across application, infrastructure, and data layers.

Contribute to engineering standards, automation, and operational best practices.

Learn new technologies, frameworks, and platforms as required.

Required Skills

Software Engineering

4–10 years of professional engineering experience.

Strong hands-on experience with Python .

Experience developing backend services and APIs.

Strong understanding of software engineering fundamentals.

Experience with:

Git

Testing

Production software

System integration

Strong experience with Docker and containerized applications.

Experience deploying and operating production applications.

Good understanding of:

Deployments

Services

Configuration

Resource management

Troubleshooting

Experience with CI/CD pipelines.

Familiarity with monitoring, logging, and observability.

AI / Agent Exposure

Hands-on experience with or familiarity with:

LLM applications

AI agents

RAG

Tool/function calling

Experience working with structured and semi-structured data.

Understanding of ETL/ELT concepts.

Experience building, maintaining, or supporting data pipelines.

Understanding of databases and data integration.

Preferred Skills

Kubernetes at scale

Infrastructure as Code

Terraform or equivalent

Distributed systems

Microservices

Workflow orchestration

Data processing frameworks

Event-driven architectures

Streaming technologies

Observability and tracing

Security and IAM

AI/ML infrastructure

Agent orchestration frameworks

What We Value

The role will involve technologies and systems that candidates may not have previously encountered.

We are looking for engineers who can:

Quickly understand unfamiliar technical environments.

Learn new infrastructure and deployment technologies.

Transfer experience from existing platforms to new environments.

Work independently through technical documentation.

Troubleshoot complex production problems.

Develop new skills as the team's needs evolve.

Transition across software, platform, AI, and data engineering responsibilities when required.

Base pay range

$126,000 CAD – $144,000 CAD annually. This range reflects base salary only — it excludes Incentive and benefits — and is a good-faith estimate for this level and location that may vary based on experience, skills, and where the role is performed.

Communication

This role requires fluent spoken and written English to communicate directly with client stakeholders — a job-related requirement of the client-facing work itself, not of any candidate's background or origin.

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