... software or machine learning engineering role. * A proactive , product-focused mindset and a high ... Engineering at Labelbox At Labelbox Engineering, we're building a comprehensive platform that ...

11 Labelbox Full Stack Software Engineer Jobs Hiring Near You
... software or machine learning engineering role. * A proactive , product-focused mindset and a high ... Engineering at Labelbox At Labelbox Engineering, we're building a comprehensive platform that ...
Staff Software Engineer, AI Data Platform
San Francisco, CA · On-site
$250K - $280K/yr
About Labelbox We're the only company offering three integrated solutions for frontier AI ... You build full stack prototypes fast and they hold up. The v1 you ship becomes the foundation the ...
Staff Software Engineer, AI Data Platform
San Francisco, CA · On-site
$250K - $280K/yr
About Labelbox We're the only company offering three integrated solutions for frontier AI ... You build full stack prototypes fast and they hold up. The v1 you ship becomes the foundation the ...
Role Overview Labelbox is the RL data factory for advancing frontier agent capabilities. We build ... You build full stack prototypes fast and they hold up. The v1 you ship becomes the foundation the ...
Role Overview Labelbox is the RL data factory for advancing frontier agent capabilities. We build ... You build full stack prototypes fast and they hold up. The v1 you ship becomes the foundation the ...
About the Role As a forward deployed engineer, you are in the unique position of helping Labelbox ... Continuously learn and improve skills in software, computer vision, and ML * Provide mentorship and ...
About the Role As a forward deployed engineer, you are in the unique position of helping Labelbox ... Continuously learn and improve skills in software, computer vision, and ML * Provide mentorship and ...
Cyber Security Intern
San Francisco, CA · On-site
Role Overview As a Security Engineering Intern at Labelbox, you will work closely with our security ... Research and evaluate enhancements to our security tool stack and contribute to related internal ...
Cyber Security Intern
San Francisco, CA · On-site
Role Overview As a Security Engineering Intern at Labelbox, you will work closely with our security ... Research and evaluate enhancements to our security tool stack and contribute to related internal ...
Role Overview As a Security Engineering Intern at Labelbox, you will work closely with our security ... Research and evaluate enhancements to our security tool stack and contribute to related internal ...
Role Overview As a Security Engineering Intern at Labelbox, you will work closely with our security ... Research and evaluate enhancements to our security tool stack and contribute to related internal ...
Managing Partner
San Francisco, CA · On-site
Map and engage decision-makers across research, engineering, product, procurement, and executive ... Expand wallet share by uncovering new project streams, embedding Labelbox as a strategic partner ...
Managing Partner
San Francisco, CA · On-site
Map and engage decision-makers across research, engineering, product, procurement, and executive ... Expand wallet share by uncovering new project streams, embedding Labelbox as a strategic partner ...
Forward Deployed Engineer, RL Environments
San Francisco, CA · On-site
$62.25 - $85/hr
Our team sits at the intersection of software engineering, ML infrastructure, and human-in-the-loop data production. Labelbox strives to ensure pay parity across the organization and discuss ...
Forward Deployed Engineer, RL Environments
San Francisco, CA · On-site
$62.25 - $85/hr
Our team sits at the intersection of software engineering, ML infrastructure, and human-in-the-loop data production. Labelbox strives to ensure pay parity across the organization and discuss ...
About Labelbox We're the only company offering three integrated solutions for frontier AI ... for its full length. * Set and uphold the craft bar: sharp task scoping, sound pipeline and ...
About Labelbox We're the only company offering three integrated solutions for frontier AI ... for its full length. * Set and uphold the craft bar: sharp task scoping, sound pipeline and ...
... software engineering experience, with strong fundamentals in Python and at least one systems-level ... Alignerr Services at Labelbox Alignerr is Labelbox's human data organization, purpose-built to ...
... software engineering experience, with strong fundamentals in Python and at least one systems-level ... Alignerr Services at Labelbox Alignerr is Labelbox's human data organization, purpose-built to ...
... for its full length. * Set and uphold the craft bar: sharp task scoping, sound pipeline and ... Experience working with forward-deployed engineers, solutions engineers, or implementation teams.
... for its full length. * Set and uphold the craft bar: sharp task scoping, sound pipeline and ... Experience working with forward-deployed engineers, solutions engineers, or implementation teams.
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Job description
We're looking for a Sr. Full-Stack AI Engineer to join our team, where you'll build the next generation of tools for developing, evaluating, and training state-of-the-art AI systems. You will own features end to end; from user-facing experiences and APIs to backend services, data models, and infrastructure.
You'll be at the heart of our applied AI efforts, with a particular focus on human-in-the-loop systems used to generate high-quality training data for Large Language Models (LLMs) and AI agents. This includes building a platform that enables us and our customers to create and evaluate data, as well as systems that leverage LLMs to assist with reviewing, scoring, and improving human submissions.
Your Impact- Own Large Surface: Design, build, and ship workflows spanning frontend UI, APIs, backend services, databases, and production infrastructure across a variety of features.
- Enable Human-in-the-Loop AI Training: Build systems that allow humans to efficiently create, review, and curate high-quality AI training and evaluation data sets.
- Support RLHF and Preference Data Workflows: Design and implement tooling that supports RLHF-style pipelines, including task generation, human review, scoring, aggregation, and dataset versioning.
- Leverage LLMs in the Review Loop: Build systems that use LLMs to assist human reviewers, such as automated checks, critiques, ranking suggestions, or quality signals.
- Advance AI Evaluation: Design and implement evaluation frameworks and interactive tools for LLMs and AI agents across multiple data modalities (text, images, audio, video).
- Create Intuitive, Reviewer-Focused Interfaces: Build thoughtful, efficient user interfaces optimized for high-throughput human review, quality control, and operational workflows.
- Architect Scalable Data & Service Layers: Design APIs, backend services, and data schemas that support large-scale data creation, review, and iteration with strong guarantees around correctness and traceability.
- Solve Ambiguous, Real-World Problems: Translate loosely defined operational and research needs into practical, scalable, end-to-end systems.
- Ensure System Reliability: Participate in on-call rotations to monitor, troubleshoot, and resolve issues across the stack.
- Elevate the Team: Re-imagine engineering practices, development processes, and documentation. Share knowledge through technical writing and design discussions.
- Bachelor's degree in Computer Science, Data Engineering, or a related field.
- 3+ years of experience in a software or machine learning engineering role.
- A proactive, product-focused mindset and a high degree of ownership, with a passion for building solutions that empower users.
- Experience using frontend frameworks like React/Redux and backend systems and technologies like Python, Java, GraphQL; familiarity with NodeJS and NestJS is a plus.
- Knowledge of designing and managing scalable database systems, including relational databases (e.g., PostgreSQL, MySQL), NoSQL stores (e.g., MongoDB, Cassandra), and cloud-native solutions (e.g., Google Spanner, AWS DynamoDB).
- Working knowledge of cloud infrastructure like GCP (GCS, PubSub) and containerization (Kubernetes).
- Excellent communication and collaboration skills.
- High proficiency in leveraging AI tools for daily development (e.g., Cursor, GitHub Copilot).
- A focus on writing clean, well-tested code and delivering your work on time.
- Experience building tools for AI/ML applications, particularly for data annotation, monitoring, or agent evaluation.
- Familiarity with data infrastructure components such as data pipelines, streaming systems, and storage architectures (e.g., Cloud Buckets, Key-Value Stores).
- Previous experience with search engines (e.g., ElasticSearch).
- Experience in optimizing databases for performance (e.g., schema design, indexing, query tuning) and integrating them with broader data workflows.
At Labelbox Engineering, we're building a comprehensive platform that powers the future of AI development. Our team combines deep technical expertise with a passion for innovation, working at the intersection of AI infrastructure, data systems, and user experience. We believe in pushing technical boundaries while maintaining high standards of code quality and system reliability. Our engineering culture emphasizes autonomous decision-making, rapid iteration, and collaborative problem-solving. We've cultivated an environment where engineers can take ownership of significant challenges, experiment with cutting-edge technologies, and see their solutions directly impact how leading AI labs and enterprises build the next generation of AI systems.
Our Technology StackOur engineering team works with a modern tech stack designed for scalability, performance, and developer efficiency:
- Frontend: React.js with Redux, TypeScript
- Backend: Node.js, TypeScript, Python, some Java & Kotlin
- APIs: GraphQL
- Cloud & Infrastructure: Google Cloud Platform (GCP), Kubernetes
- Databases: MySQL, Spanner, PostgreSQL
- Queueing / Streaming: Kafka, PubSub
About Labelbox
Sourced by ZipRecruiter
Company size
51 - 200 Employees
Headquarters location
San Francisco, CA, US
Year founded
2018