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ML Research Engineer

Who we are


At Twelve Labs, we are pioneering the development of cutting-edge multimodal foundation models that have the ability to comprehend videos just like humans do. Our models have redefined the standards in video-language modeling, empowering us with more intuitive and far-reaching capabilities, and fundamentally transforming the way we interact with and analyze various forms of media.


With a remarkable $107 million in Seed and Series A  funding, our company is backed by top-tier venture capital firms such as NVIDIA’s NVentures, NEA, Radical Ventures, and Index Ventures, and prominent AI visionaries and founders such as Fei-Fei Li, Silvio Savarese, Alexandr Wang and more. Headquartered in San Francisco, with an influential APAC presence in Seoul, our global footprint underscores our commitment to driving worldwide innovation.


We are a global company that values the uniqueness of each person’s journey. It is the differences in our cultural, educational, and life experiences that allow us to constantly challenge the status quo. We are looking for individuals who are motivated by our mission and eager to make an impact as we push the bounds of technology to transform the world. Join us as we revolutionize video understanding and multimodal AI.



About the role


As an ML Research Engineer at Twelve Labs, you will drive our applied efforts in video embedding and retrieval, multimodal language modeling, and intelligent agents. You will collaborate closely with other engineers and scientists to build the next generation of Twelve Labs models, services, and infra. Scaling our models, data, and training + inference platform, while improving the reliability of our core systems, is the essence of the role. This role is a perfect fit for research minded engineers who want to build SOTA video, vision, and video-language modeling systems!

In this role, you will

  • Deliver top-notch applied research solutions to problems like VLM finetuning, auto-labeling of video-text datasets, and model-based filtering of said datasets to optimize (end-)model performance

  • Collaborate with our science org to optimize the (e.g.) training/inference performance of our core model stack

  • Define a systematic prompt generation and selection strategy for our flagship VLM

  • Mentor junior engineers/researchers, and hold a high bar around code quality / engineering best practices

  • Lead by example in interviewing, hiring, and onboarding passionate and empathetic engineers

  • Work across teams to understand and manage project priorities and product deliverables, evaluate trade-offs, and drive technical initiatives from ideation to execution to shipment

  • Advance our industry-leading enterprise video solutions by incorporating already-great research into fault tolerant, low latency e2e systems

You may be a good fit if you have:

  • 10+ years of industry experience (or 7+ with a PhD in a related technical domain)

  • A PhD, or a Master's degree, in machine learning or a closely related discipline

  • Led teams of 5+ engineers as a technical lead, or formally managed engineering teams comprised of both junior and senior engineers

  • Published research/engineering work on LLMs, VLMs, video models, or contrastive multimodal models in top-tier AI conferences such as NeurIPS, ICML, ICLR, etc., or have scaled distributed foundation model data acquisition, training, inference, evaluation, etc.

  • Expertise optimizing model inference with TensorRT, ONNX, Triton Inference Server, or directly related technologies

  • Built Kubernetes-based systems for distributed data/ML workflows or worked extensively with HPC tools such as Slurm

  • A passion for, and experience in, both ML modeling and ML/AI systems software engineering

  • Strong Python expertise and considerable prior work history with at least one statically typed language (we use Golang)

  • An applied bent / are not a pure theoretician: we are an applied science and engineering group at an applied science and engineering company!

  • Strong communication skills in written and spoken English

Interview and Onboarding Process:


1) Recruiter Phone Screen

2) Initial Technical Assessment

3) Final round technical assessment & culture interview

4) Reference Checks 


We're also excited to share that we'll do global onboarding in Seoul for all new hires (paid company travel!).


Even if there are a few checkboxes that aren’t ticked through your prior experience, we still encourage you to apply! If you are a 0-to-1 achiever, a ferocious learner, and a kind and fun team player who motivates others, you will find a home at Twelve Labs.


We welcome applicants from all walks of life and are committed to equal-opportunity employment. We cherish and celebrate diversity not just because it is the right thing to do, but because it makes our company much stronger.



Benefits and Perks

🤝 An open and inclusive culture and work environment.

🧑‍💻 Work closely with a collaborative, mission-driven team on cutting-edge AI technology.

✈️ Extremely flexible PTO and parental leave policy. Office closed the week of Christmas and New Years.

🏙 Remote-flexible, offices in San Francisco and Seoul and coworking stipend.

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Average salary estimate

$175000 / YEARLY (est.)
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$150000K
$200000K

If an employer mentions a salary or salary range on their job, we display it as an "Employer Estimate". If a job has no salary data, Rise displays an estimate if available.

What You Should Know About ML Research Engineer, Twelve Labs

At Twelve Labs, we are at the forefront of transforming video understanding through groundbreaking multimodal foundation models. As an ML Research Engineer, you'll join a passionate team dedicated to redefining video-language modeling and enabling machines to comprehend videos like humans do. Your role will have a direct impact on critical areas such as video embedding and retrieval, multimodal language modeling, and the development of intelligent agents. We’re looking for someone with a strong applied research background to dive into real-world problems like VLM fine-tuning and auto-labeling video-text datasets. Collaboration will be key, as you'll work closely with scientists and engineers to enhance our models and platforms, ensuring they are robust and efficient. As a leader in engineering best practices, you'll also mentor junior team members and be actively involved in hiring efforts. With a strong emphasis on reliability and performance, you'll help drive technical initiatives from conceptualization to execution. If you have over 10 years of experience—or 7 years with a PhD—this role could be an amazing opportunity for you to make a significant impact on the future of AI. We foster a workplace that values diversity and encourages individuals to bring their whole selves to work. Join us at Twelve Labs to revolutionize the way the world interacts with video.

Frequently Asked Questions (FAQs) for ML Research Engineer Role at Twelve Labs
What are the main responsibilities of an ML Research Engineer at Twelve Labs?

As an ML Research Engineer at Twelve Labs, you will focus on applied research solutions related to video embedding, multimodal language modeling, and intelligent agents. Responsibilities include fine-tuning video-language models, collaborating with the science team for optimization, and mentoring junior engineers to maintain high engineering standards.

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What qualifications are required for the ML Research Engineer position at Twelve Labs?

To qualify for the ML Research Engineer role at Twelve Labs, you need to have at least 10 years of industry experience or 7 years with a PhD in a related field. Experience leading engineering teams, contributing to top-tier AI conferences, and expertise in model inference technologies are also essential.

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What kind of projects can an ML Research Engineer expect to work on at Twelve Labs?

ML Research Engineers at Twelve Labs can look forward to working on innovative projects such as developing state-of-the-art video models, scaling data acquisition and training, and creating fault-tolerant, low-latency end-to-end systems to enhance enterprise video solutions.

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Is team leadership a part of the ML Research Engineer role at Twelve Labs?

Yes, team leadership is a vital aspect of the ML Research Engineer role at Twelve Labs. You'll not only lead projects but also mentor junior engineers, uphold engineering best practices, and contribute to the hiring process to build a strong, cohesive team.

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What does the onboarding process look like for an ML Research Engineer at Twelve Labs?

The onboarding process for ML Research Engineers at Twelve Labs consists of several stages: an initial recruiter phone screen, a technical assessment, followed by a final round of evaluations including cultural interviews. Additionally, successful candidates will be invited to a global onboarding experience in Seoul, providing an exciting start to their journey.

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Common Interview Questions for ML Research Engineer
Can you describe your experience with video-language modeling?

In your answer, highlight specific projects where you worked on video-language models, discussing the challenges you faced and the techniques you employed to solve them. Mention any published research or outcomes that showcase your expertise in this area.

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How do you ensure the reliability and performance of ML models you develop?

Discuss techniques you utilize for model testing and evaluation, such as cross-validation, A/B testing, and continuous integration practices. Provide examples of how you've applied these techniques to improve model reliability and performance in previous projects.

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What leadership experience do you have that would contribute to the role of ML Research Engineer?

Share specific examples of when you've led a team, detailing the size of the team, your leadership style, and any successes or challenges faced. Emphasize how your leadership improved project outcomes or team dynamics.

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Describe a time when you had to mentor a junior engineer. What was the outcome?

Provide a concrete example of a mentorship experience, including how you guided the individual through specific tasks, what skills you helped them develop, and how it ultimately benefited both them and the project.

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How do you approach collaboration in a multidisciplinary team?

Illustrate your collaboration strategy by describing experiences where you worked with cross-functional teams. Emphasize communication, understanding diverse perspectives, and aligning project goals.

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What methods do you use for model finetuning?

Discuss your approaches and techniques for finetuning models, including any frameworks or technologies you have used. Provide a specific example where a certain method led to a significant improvement in model performance.

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How do you handle project prioritization and deliverables?

Explain your approach to prioritizing tasks, including tools and frameworks that help you, such as Agile methodologies. Provide examples of how your prioritization led to successful project execution.

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What experience do you have with optimizing model inference?

Share your expertise related to inference optimization and the tools you are familiar with, such as TensorRT or ONNX. Provide examples of performance improvements you've achieved through optimization.

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Can you give an example of a challenging problem you solved in your previous work?

Describe a specific problem that required a creative or innovative solution. Discuss the thought process you went through, the solution you implemented, and the results that followed.

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What interests you most about the ML Research Engineer role at Twelve Labs?

Your response should capture your enthusiasm for the responsibilities outlined, the company's mission to revolutionize video understanding, and how you see yourself contributing to the team. Align your interests with what Twelve Labs stands for.

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DATE POSTED
December 20, 2024

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