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Shelf Stacking Jobs in Ontario (NOW HIRING)

The app around those screens is genuinely native: navigation stacks, transitions, back-gesture ... Lead the early build-versus-buy evaluation, assessing an off-the-shelf festival app solution ...

Follow FIFO (First-In, First-Out), FEFO (First-Expired, First-Out), shelf-life, stock-rotation, and ... Move, stack, retrieve, rotate, and stage pallets, racks, bins, ingredients, packaging, and ...

Execute array firmware upgrades, controller replacements, and drive-shelf expansions following ... stacks. * 5 years or more experience managing enterprise firewall (Fortinet, Cisco preferred)

Shelf Stacking information

See Ontario salary details

$8

$17

$39

How much do shelf stacking jobs pay per hour?

As of Sep 8, 2026, the average hourly pay for shelf stacking in Ontario is $17.11, according to ZipRecruiter salary data. Most workers in this role earn between $12.02 and $17.79 per hour, depending on experience, location, and employer.

What is a shelf stacking job?

Shelf stacking jobs involve organizing, replenishing, and arranging products on store shelves in retail environments such as supermarkets or department stores. Shelf stackers ensure that merchandise is displayed neatly, prices are visible, and stock levels are maintained for customer convenience. This role often includes checking for expired products, rotating stock, and sometimes assisting customers with locating items. Shelf stackers typically work early mornings, evenings, or overnight to prepare the store for opening or to restock after busy periods.

What skills and qualifications are needed to be a shelf stacker?

To thrive as a Shelf Stacker, you need good physical stamina, attention to detail, and basic numeracy, with no formal qualifications typically required. Familiarity with inventory management systems or handheld barcode scanners is often beneficial. Reliability, time management, and teamwork are important soft skills in this role. These skills ensure shelves are stocked accurately and efficiently, supporting smooth store operations and positive customer experiences.

What are common challenges faced by shelf stackers and how can they be overcome?

Shelf stackers often encounter challenges such as managing heavy lifting, maintaining accuracy while stocking products, and working efficiently during busy store hours. To overcome these, it's important to use proper lifting techniques to avoid injury, pay close attention to product placement and expiry dates, and communicate effectively with team members to coordinate tasks during peak periods. Many stores provide training and ergonomic tools to help shelf stackers work safely and efficiently.

What is the difference between Shelf Stacking vs Cashier?

AspectShelf StackingCashier
Primary RoleOrganizing and stocking shelves in retail storesHandling customer transactions at checkout
Required SkillsAttention to detail, physical staminaCustomer service, basic math skills
Work EnvironmentRetail stores, stockroomsRetail counters, checkout areas
Common CertificationsNone typically requiredNone typically required

While both roles are essential in retail, Shelf Stacking focuses on maintaining product displays and stock levels, whereas Cashiers handle customer transactions. Both jobs often work together to ensure a smooth shopping experience.

What is the average salary for shelf stacking?

The average salary for shelf stacking or stock clerk positions typically ranges from $20,000 to $25,000 per year, depending on location, experience, and employer. Part-time roles may pay hourly wages around minimum wage, which varies by region. Skills such as organization and familiarity with inventory management can influence pay rates.

What are popular job titles related to Shelf Stacking jobs in Ontario?

For Shelf Stacking jobs in Ontario, the most frequently searched job titles are:

What job categories do people searching Shelf Stacking jobs in Ontario look for?

The top searched job categories for Shelf Stacking jobs in Ontario are:

Infographic showing various Shelf Stacking job openings in Ontario as of August 2026, with employment types broken down into 63% Full Time, 35% Part Time, and 2% Contract. Highlights an 97% Physical, 1% Hybrid, and 2% Remote job distribution, with an average salary of $35,580 per year, or $17.1 per hour.

Senior Product Designer, Autonomy Data & Tooling

Waabi

Toronto, ON • On-site

Full-time

Medical, Dental, Vision, PTO

Posted 5 days ago


Job description

Waabi, founded by AI visionary Raquel Urtasun, is the leader in Physical AI. With a world-class team, we're unlocking the next era of autonomous transportation with technology that's powering commercial autonomous trucks and robotaxis. Waabi is backed by and partners with world leaders in AI, automotive, logistics, and deep tech.
 
With offices in Toronto, San Francisco, Dallas, and Pittsburgh, Waabi is growing quickly and looking for diverse, innovative and collaborative candidates who want to impact the world in a positive way. To learn more visit: www.waabi.ai

We're seeking a Senior Product Designer to own the human-in-the-loop workflows at the core of how Waabi turns raw driving data into a safer autonomy stack: the software environments where expert human judgment and automation work as one to make every engineer, analyst, operator, and researcher faster.

These are the workflows where a human expert and an automated system have to move together: data labeling, map annotation, track testing, and release testing. Your job is to design the environments that make that collaboration fast and high-signal, and then bring shared patterns into the design system for compounding returns across every internal and partner-facing surface.

You'll join as the third product designer at Waabi, sitting on the Product, Design & TPM team. You'll be the systems-minded builder who turns one-off UI work into compounding returns across the whole platform.

You will...

  • Design data labeling and annotation workflows. You'll design the tools for data curation, internal lightweight labeling, QA, and the feedback loops that connect label quality to model performance. Today this work lives in many surfaces, and your goal will be to unify the workflows to accelerate training data throughput and quality, to continually improve autonomy safety at scale.

  • Design data discovery surfaces and annotation tools. Grow the primary tools for finding, filtering, and curating AV data across logs, events, simulations, and labels. You'll help design the experience that lets triage analysts, systems engineers, autonomy engineers, and ML researchers navigate petabytes of driving and simulated data. You'll also own the design for our map annotation tooling: task management, branch/merge workflows, annotator feedback loops, defect logging, and urban surface street annotation as Waabi expands from highway trucking to urban robotaxi deployments.

  • Ground the work in research. Get out of the tools and into the workflows. Shadow labelers, annotators, triage analysts, and right-seaters in their real environment. Produce qualitative and quantitative insight on where time and signal are lost, and disseminate it so the whole team designs from the same picture of the user.

  • Build and scale Waabi's design system. Work with designers and full-stack engineers to take our nascent system and turn it into a robust, branded component system. This means complex, reusable components: timeline scrubbers, rich multi-select filters, pass/fail summary cards, map visualization primitives, data tables with inline actions. These components serve triage, metrics dashboards, data exploration, mapping, fleet ops, and partner-facing UI.

  • Establish front-end and design infrastructure for tooling self-service. Build the context architecture that lets teams build their own UI with UX best practices baked in. Enable robust prototyping with read-only or snapshot data so teams can iterate without touching production.

  • Ship directly in code. You'll contribute to production React codebases using AI-assisted tools. The shipped product is the deliverable, not a Figma handoff.

 

Qualifications

  • Data-centric workflow designer who builds in code. 5-8+ years designing complex, data-rich tools where the primary interface is structured data: tables, filters, search, dashboards, maps, or annotation tools. You see the cross-tool workflow as your unit of work, not the single screen. You can make dense information scannable and actionable without dumbing it down, and you validate by building working prototypes on real data, not static mocks.

  • Design-system builder. You think in components, tokens, patterns, and infrastructure, and see the reusable primitive inside every one-off request. You've built or significantly grown a design system, and you understand the difference between a component library and a design system: tokens, documentation, governance, adoption, and the political work of supporting engineers to use it.

  • AI-native builder. You use AI-assisted coding (Cursor, Claude Code, or a similar agentic setup) as a default part of how you prototype and ship, not a novelty. It's how you get from idea to working software fast.

  • First-principles thinker. You strip problems down to their fundamentals. The tools you'll design have no off-the-shelf pattern to copy. Curation workflows, map annotation, track test playlist management, data lineage visualization: these require you to understand the domain deeply and invent the right interaction model.

  • Strong front-end intuition. You don't need to be a senior React engineer, but you understand component architecture, state management, and the constraints of web-based data visualization well enough to design things that are buildable and performant.

  • Infrastructure mindset. You're energized by the meta-problem: how do we make everyone faster? You see AGENTS.md files, context documentation, and component APIs as design deliverables, not overhead.

Bonus / Nice to Have
  • Advanced AI-assisted workflows. Custom agentic setups, and real opinions about how AI changes the relationship between design systems and self-service UI.

  • GIS or mapping tools background. Experience with map annotation, geospatial data, or tools like Mapbox, QGIS, or proprietary mapping tools.

  • Data platform or ML tooling experience. Prior work designing labeling tools, data curation interfaces, dataset management, or ML experiment tracking.

  • Design system at scale. You've maintained a system used by 10+ engineers across multiple product surfaces and dealt with the versioning, adoption, and governance challenges that come with it.

  • AV, robotics, or safety-critical domains. Prior experience where the quality of tooling directly impacts physical safety.

The US yearly salary range for this role is: $100,300 - $200,000 USD in addition to competitive perks & benefits. Waabi (US) Inc.'s yearly salary ranges are determined based on several factors in accordance with the Company's compensation practices. The salary base range is reflective of the minimum and maximum target for new hire salaries for the position across all US locations.  Note: The Company provides additional compensation for employees in this role, including equity incentive awards and an annual performance bonus.

Perks/Benefits:
  • Competitive compensation and equity awards.
  • Health and Wellness benefits encompassing Medical, Dental and Vision coverage (for full-time employees only).
  • Unlimited Vacation.
  • Flexible hours and Work from Home support.
  • Daily drinks, snacks and catered meals (when in office).
  • Regularly scheduled team building activities and social events both on-site, off-site & virtually.
  • As we grow, this list continues to evolve! 
 
Waabi is a technology start-up building technologies to transform the way the world moves. Join our talented team to be a part of the future and to make an impact!
 
Waabi is an equal opportunity employer. We celebrate diversity and are committed to creating a supportive, inclusive, and accessible workplace for all our employees. We seek applicants of all backgrounds and identities, across race, color, ethnicity, national origin or ancestry, age, citizenship, religion, sex, sexual orientation, gender identity or expression, military or veteran status, marital status, pregnancy or parental status, caregiver status, disability, or any other characteristic protected by law. We make workplace accommodations for qualified individuals with disabilities as required by applicable law. If reasonable accommodation is needed to participate in the job application or interview process please let our recruiting team know.
We may use artificial intelligence (AI) tools to support parts of the hiring process, such as reviewing applications, analyzing resumes, or assessing responses and identifying potential inconsistencies or verification signals in application materials based on available information. These tools assist our recruitment team but do not replace human judgment. Final hiring decisions are ultimately made by humans. If you would like more information about how your data is processed, please contact us.
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