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Embedded Engineer Jobs in Manitoba (NOW HIRING)

... embedded analytics, operational data products, and AI/ML capabilities across our SaaS point-of-sale ... About the Role: The Senior Data Engineer will design, build, and improve the data platform ...

Quality assurance is embedded within the development process, and developers are fully responsible for the quality of their output. Success in this role is defined by reliability of delivery, quality ...

Quality assurance is embedded within the development process, and developers are fully responsible for the quality of their output. Success in this role is defined by reliability of delivery, quality ...

Quality assurance is embedded within the development process, and developers are fully responsible for the quality of their output. Success in this role is defined by reliability of delivery, quality ...

Analyze legacy PHP applications with embedded SQL to understand system logic * Reverse engineer reports to identify data sources, dependencies, and requirements * Develop SQL queries and data ...

With an unmatched breadth and depth of engineering, advisory and sciencebased expertise, our global minds unite to power local solutions. We are pathfinders and impact makers. We are Visioneers. We ...

With an unmatched breadth and depth of engineering, advisory and sciencebased expertise, our global minds unite to power local solutions. We are pathfinders and impact makers. We are Visioneers. We ...

... Developers, Business Analysts, Product Operations, and other cross-functional partners to enable strategic, AI-embedded, and outcome-driven product decisions. WHY YOU SHOULD CHOOSE PAYWORKS ...

Electrical Engineering, Power

Winnipeg, MB · On-site

CA$98K - CA$130K/yr

With an unmatched breadth and depth of engineering, advisory and sciencebased expertise, our global minds unite to power local solutions. We are pathfinders and impact makers. We are Visioneers. We ...

Electrical Engineering, Power

Winnipeg, MB · On-site

CA$98K - CA$130K/yr

With an unmatched breadth and depth of engineering, advisory and sciencebased expertise, our global minds unite to power local solutions. We are pathfinders and impact makers. We are Visioneers. We ...

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Embedded Engineer information

See Manitoba salary details

$51K

$109.3K

$166.5K

How much do embedded engineer jobs pay per year?

As of Sep 14, 2026, the average yearly pay for embedded engineer in Manitoba is $109,281.00, according to ZipRecruiter salary data. Most workers in this role earn between $90,500.00 and $124,500.00 per year, depending on experience, location, and employer.

What are the key skills and qualifications needed to thrive as an embedded engineer?

To thrive as an Embedded Engineer, you need a solid background in computer science or electrical engineering, with strong skills in C/C++, microcontroller programming, and embedded systems design. Familiarity with real-time operating systems (RTOS), hardware debugging tools, and version control systems like Git is typically required, and certifications such as Certified Embedded Systems Engineer (CESE) can be beneficial. Strong problem-solving abilities, attention to detail, and effective communication are standout soft skills in this field. These competencies are crucial for developing reliable, efficient embedded solutions that integrate seamlessly with hardware and meet user requirements.

What are some common challenges faced by embedded engineers when working on cross-functional teams?

Embedded Engineers often collaborate closely with hardware designers, software developers, and test engineers, which can present challenges related to communication and integration. Aligning the firmware with hardware specifications, managing resource constraints, and ensuring timely debugging across different platforms are frequent hurdles. To succeed, Embedded Engineers need strong communication skills and a collaborative mindset to bridge gaps between disciplines and deliver cohesive, reliable systems.

What is the difference between Embedded Engineer vs Firmware Engineer?

AspectEmbedded EngineerFirmware Engineer
Required CredentialsBachelor's in Electrical, Computer Engineering, or related fields; certifications like ARM or IoT certifications are commonBachelor's in Computer Engineering, Electrical Engineering, or related; often similar certifications in embedded systems or firmware development
Work EnvironmentDesigning and developing hardware-software integrated systems, often in industrial, automotive, or consumer electronicsWriting, testing, and debugging low-level code that runs directly on hardware devices like microcontrollers or embedded processors
Employer & Industry UsageElectronics manufacturers, automotive, aerospace, IoT companiesConsumer electronics, IoT devices, medical devices, automotive systems

Embedded Engineers and Firmware Engineers often work closely, but Embedded Engineers focus on both hardware and software integration, while Firmware Engineers specialize in low-level code development that runs directly on hardware. Both roles require similar skills and certifications, but their primary focus and work environment differ slightly.

Are embedded engineers in demand?

Embedded engineers are in high demand due to the growth of IoT devices, automotive systems, and consumer electronics. Skills in C/C++, real-time operating systems, and hardware integration are particularly valuable in this field, which offers strong job stability and opportunities across various industries.

What does an embedded engineer do?

An embedded engineer designs, develops, and tests software and hardware for embedded systems, which are specialized computing devices within larger machines or products. They work with microcontrollers, real-time operating systems, and programming languages like C or C++, often collaborating with hardware teams to ensure system functionality and reliability.
Infographic showing various Embedded Engineer job openings in Manitoba as of September 2026, with employment types broken down into 72% Full Time, 14% Part Time, and 14% Contract. Highlights an 100% In-person job distribution, with an average salary of $109,281 per year, or $52.5 per hour.

Senior Data Engineer

Winnipeg, MB • On-site

Full-time

Re-posted 10 days ago


Job description

What We do:
iQmetrix is a global provider of Interconnected Commerce software solutions for telecom retail. Interconnected Commerce is an AI-native telecom commerce platform that acts as a system of intelligence. It replaces fragmented legacy stacks with a modern, modular operating layer, connecting telcos, retailers, and OEMs into one flow across channels and markets. The result is less complexity, lower cost, and the speed to move ahead.
For 26 years, we’ve been passionate about helping the leading brands in telecom to grow by providing best-in-class software, services, and expertise that enables them to adapt and thrive. Our solutions power $17BN in sales annually, handling nearly 53 million invoices and more than 28 million activations, and are used by more than 370,000 telecom retail professionals across almost 1,000 clients. iQmetrix is a privately held software-as-a-service (SaaS) company with employees in Canada, the U.S., India, and Europe. For more information, please visit www.iqmetrix.com.
How We Do it: 
We are on a self-management journey. As we work to move away from the restrictions of hierarchy, teams are building collaborative peer-based networks where there are no bosses. Decisions are meant to be distributed to the people who are best able to make the decisions which means more freedom for individuals to contribute at their highest levels. We are purpose-driven, helping individuals connect to the meaning in their day-to-day work. Additionally, we are currently on the road to building a diverse and inclusive environment. Working at iQmetrix means always looking at ways to be better.
Reports To: Technical Lead
Salary: Starting at $110,000 CAD, commensurate with experience.
About the Team:
The Data & Analytics team is moving from a legacy reporting model to a modern data platform organization, one that powers embedded analytics, operational data products, and AI/ML capabilities across our SaaS point-of-sale (POS) and retail management system (RMS) ecosystem.
The team builds on cloud-native lakehouse infrastructure to create trusted, reusable, and scalable data foundations that support internal decision-making, customer-facing product experiences, and emerging AI use cases. Pipelines, data products, and platform patterns are all in scope.
 
A core part of the mission is reducing friction across the data lifecycle: onboarding, modeling, governance, exposure, and application. That means building high-quality lakehouse pipelines, enforcing rigorous data quality standards, and creating engineering patterns that let analytics, product, engineering, and AI initiatives move faster with more confidence.
About the Role:
The Senior Data Engineer will design, build, and improve the data platform capabilities that power analytics, embedded reporting, operational data products, and AI-ready datasets.
 
This role goes beyond pipeline implementation. It includes data modeling, platform design, performance tuning, governance, observability, and the creation of reusable engineering patterns that support scalable and trustworthy data products.
 
The ideal candidate is a hands-on engineer with strong production experience in Python, SQL, and distributed compute environments. They should have deep familiarity with modern lakehouse patterns and layered data product design, and should be comfortable providing technical leadership through mentoring, design reviews, code reviews, and platform stewardship.
What You'll Be Doing:
 
  • Design, build, and optimize scalable data pipelines and curated data products using Python, SQL, and distributed compute - with a strong understanding of execution models, partitioning, and performance tuning.
  • Develop and maintain data models across raw, refined, and curated layers to support reporting, embedded analytics, operational workflows, machine learning, and emerging AI use cases.
  • Build reliable, reusable, and well-documented data assets consumed by analytics, product, engineering, and downstream platform teams.
  • Design data structures that support multi-tenant SaaS reporting, dimensional modeling, semantic analytics, and governed access patterns across multiple products and customer boundaries.
  • Own orchestration using asset-based or software-defined orchestration patterns - where pipelines are modeled as versioned, observable data assets with clear ownership and dependency contracts, not just task graphs.
  • Improve the performance, reliability, observability, and cost efficiency of data processing workflows across the platform.
  • Implement and advance data quality, lineage, governance, and secure access control practices using modern lakehouse tooling and platform standards.
  • Partner with product, software engineering, analytics, and AI stakeholders to translate business workflows into reliable data products and platform capabilities.
  • Contribute to platform architecture decisions, reusable engineering patterns, data onboarding standards, and the ongoing evolution of the organization's data platform strategy.
  • Support event-oriented and near-real-time data patterns where needed to enable downstream operational and product use cases.
  • Troubleshoot complex data issues, lead root-cause analysis, and improve the resilience of pipelines, jobs, and platform services.
  • Operate comfortably within containerized or cloud-native platform infrastructure, including understanding how data services interact with surrounding platform components.
  • Mentor junior and intermediate engineers, review code and designs, and help establish best practices for data engineering, analytics enablement, and AI/ML-supporting data workflows.

What We're Looking For:
 
  • 5+ years of experience in data engineering, software engineering, analytics engineering, or a closely related field.
  • Strong proficiency in SQL and Python, with production experience in distributed compute environments and a solid understanding of execution models, partitioning, and optimization.
  • Hands-on experience with cloud-native lakehouse platforms and modern data lake storage patterns, including Delta Lake or equivalent.
  • Strong opinions about layered data product design - specifically separation of concerns between raw, refined, and curated data - and experience enforcing those boundaries at scale in a governed environment.
  • Experience designing, building, and maintaining production ETL/ELT pipelines for analytical or operational workloads.
  • Strong understanding of data modeling concepts, including dimensional modeling, curated data products, and semantic-ready data structures.
  • Familiarity with asset-based or software-defined orchestration approaches, version control, CI/CD practices, and production support for data systems.
  • Strong understanding of data quality, observability, governance, lineage, and secure data access patterns.
  • Ability to communicate technical trade-offs clearly and partner effectively across engineering, product, analytics, and business teams.
  • Experience mentoring other engineers through code reviews, design reviews, troubleshooting, and shared engineering standards.

Nice To Have:
 
  • Experience with Unity Catalog or equivalent metadata and governance layers in a cloud data platform.
  • Experience with event-driven, streaming, or near-real-time data patterns in cloud or lakehouse ecosystems.
  • Experience building data products that directly support predictive model development - including feature preparation, label definition, and pipelines that feed model training and evaluation workflows.
  • Experience supporting generative AI or agent workflows through structured and unstructured data preparation, retrieval patterns, or evaluation datasets.
  • Experience working in a SaaS product organization with multiple products, domains, tenants, or customer-specific data boundaries.
  • Familiarity with cost optimization practices for cloud data platforms.

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