招聘
At Canva, our mission is to empower the world to design. We’re building AI that feels magical and lands real impact for millions of people - helping anyone create with confidence. We're looking for a Machine Learning Engineer to own the data foundations that power our multimodal agent research—building the pipelines, datasets, and tooling that turn ambitious research ideas into trainable reality.
About the team
We explore multimodal agentic architectures, build scalable training and evaluation loops, and partner closely with product and platform teams to turn breakthroughs into delightful product features. We are a cutting-edge post-training team, developing new multimodal agentic systems. We work on all topics of multimodal modelling, post-training and design agents, we build scalable training and evaluation loops, and partner closely with product and platform teams to turn breakthroughs into delightful product features.
About the role
You'll be responsible for the data lifecycle that fuels our agent research: from collection and curation through to preprocessing, quality assurance, and delivery into training pipelines. You'll work closely with research scientists to understand what data is needed, then design and build the systems to make it happen—reliably and at scale. You'll have significant autonomy over how data problems get solved, while aligning on what problems matter most with the broader team.
What you'll do
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Design and build data pipelines for agent training: collection, filtering, deduplication, formatting, and versioning across text, image, and multimodal sources.
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Build and maintain infrastructure for efficient data loading, storage, and retrieval at scale (S3, distributed systems, streaming pipelines).
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Collaborate with research scientists to translate research requirements into concrete data specifications, and iterate as experiments reveal new needs.
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Create evaluation datasets and benchmarks in collaboration with researchers—curating task distributions that surface real failure modes.
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Develop tooling for dataset construction—including human annotation workflows, synthetic data generation, and preference data collection for RLHF/DPO-style training.
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Own data quality: build validation frameworks, monitor for drift and contamination, and establish standards that make datasets trustworthy and reproducible.
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Document datasets thoroughly: provenance, known limitations, intended use cases, and versioning history.
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Implement comprehensive test coverage for data pipelines and ML workflows, ensuring reliability and catching regressions early.
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Elevate codebase quality through code reviews, refactoring, and establishing engineering best practices that help research velocity scale sustainably.
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Contribute to team roadmaps by identifying data bottlenecks and proposing solutions that unblock research velocity.
You're likely a match if you have
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Strong software engineering skills in Python, with experience building production-grade data pipelines and ML DevOps.
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Practical experience with prompt engineering—designing, testing, and refining prompts for reliable LLM/VLM outputs.
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Experience with ML data workflows: large-scale data processing and loading (Ray, or similar), data versioning, and format considerations for training (tokenization, batching, sharding).
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Hands-on experience working with data pipelines for large-scale distributed ML training runs.
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Familiarity with annotation tooling and human-in-the-loop data collection (Label Studio or internal systems).
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Understanding of ML training requirements—you know what "good data" looks like for LLM/VLM fine-tuning and can anticipate downstream issues.
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Experience loading and writing large datasets to/from cloud infrastructure (AWS) and distributed storage systems.
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Strong communication skills: you can work with researchers to scope ambiguous problems and translate needs into actionable plans.
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A collaborative approach, comfortable taking ownership and iterating quickly.
Nice to have
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Experience with preference data collection for RLHF or reward modelling.
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Familiarity with multimodal data (image-text pairs, video, design assets).
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Experience building synthetic data generation pipelines using LLMs.
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Background in data quality metrics and monitoring systems.
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Contributions to dataset releases or benchmarks in the ML community.
What's in it for you?
Achieving our crazy big goals motivates us to work hard - and we do - but you'll experience lots of moments of magic, connectivity and fun woven throughout life at Canva, too. We also offer a range of benefits to set you up for every success in and outside of work.
Here's a taste of what's on offer:
- Equity packages - we want our success to be yours too
- Inclusive parental leave policy that supports all parents & carers
- An annual Vibe & Thrive allowance to support your wellbeing, social connection, office setup & more
- Flexible leave options that empower you to be a force for good, take time to recharge and supports you personally
Check out lifeatcanva.com for more info.
Other stuff to know
We make hiring decisions based on your experience, skills and passion, as well as how you can enhance Canva and our culture. When you apply, please tell us the pronouns you use and any reasonable adjustments you may need during the interview process.
We celebrate all types of skills and backgrounds at Canva so even if you don’t feel like your skills quite match what’s listed above - we still want to hear from you!
Please note that interviews are conducted virtually.
Join the team redefining how the world experiences design
Hiya, g'day, mabuhay, kia ora, 你好, hallo, vítejte!
Thanks for stopping by. We know job hunting can be a little time consuming and you're probably keen to find out what's on offer, so we'll get straight to the point.
Where and how you can work
The buzzing Canva London campus features several buildings around beautiful leafy Hoxton Square in Shoreditch. While our global headquarters is in Sydney, Australia, London is our HQ for Europe, with all kinds of teams based here, plus event spaces to gather our team and communities.
You'll experience a warm welcome from our Vibe team at front of house, amazing home cooked food from our Head Chef and a variety of workspaces to hang out with your team mates or get solo work done. That said, we trust our Canvanauts to choose the balance that empowers them and their team to achieve their goals and so you have choice in where and how you work.
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关于Canva

Canva
Series DAn online design and visual communication platform that provides design tools for non-designers.
1,001-5,000
员工数
Sydney
总部位置
$40B
企业估值
评价
4.2
10条评价
工作生活平衡
3.8
薪酬
2.5
企业文化
4.5
职业发展
4.2
管理层
4.3
78%
推荐给朋友
优点
Flexible schedules and hours
Supportive team and leadership
Growth and learning opportunities
缺点
Fast-paced and demanding environment
Heavy workload and long hours
High expectations and pressure
薪资范围
31个数据点
Junior/L3
L2
L3
L4
L5
L6
M3
M4
M5
M6
Mid/L4
Senior/L5
Staff/L6
Junior/L3 · Data Scientist B1
0份报告
$111,685
年薪总额
基本工资
-
股票
-
奖金
-
$94,933
$128,437
面试经验
2次面试
难度
3.0
/ 5
时长
14-28周
体验
正面 0%
中性 50%
负面 50%
面试流程
1
Application Review
2
Online Assessment/Portfolio Review
3
Recruiter Screen
4
Hiring Manager Interview
5
Team Interview
6
Offer
常见问题
Technical Knowledge
Portfolio/Design Questions
Behavioral/STAR
Culture Fit
Past Experience
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