Research Engineer: Graph Machine Learning
Research Engineer: Graph Machine Learning

Research Engineer: Graph Machine Learning

London Full-Time 36000 - 60000 Β£ / year (est.) No home office possible
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At a Glance

  • Tasks: Lead research on knowledge representation and develop graph machine learning techniques.
  • Company: Atman Labs is innovating AI to emulate human expertise across various domains.
  • Benefits: Work in a dynamic environment with visa sponsorship and opportunities for impactful contributions.
  • Why this job: Join a mission-driven team aiming to revolutionise AI and create benevolent systems for humanity.
  • Qualifications: PhD or equivalent experience in Graph Machine Learning; strong programming skills in Python.
  • Other info: Showcase your creativity and passion through projects and personal stories in your application.

The predicted salary is between 36000 - 60000 Β£ per year.

Research Engineer: Graph Machine Learning Atman Labs, London About Atman Labs At Atman Labs we are building software to emulate proactive human expertise. Emulating human experts with deep knowledge and proactive assistance has largely been impossible to do via standalone Artificial Intelligence techniques. As an applied research and commercialization company we are deploying our products in a number of domains to demonstrate the value of our approach – from proactive shopping assistance, to personal teachers to healthcare concierges – and with this commercial focus advance our unique research that lies at the intersection of Reinforcement Learning rewards, Large Scale Knowledge Representation, and Predictive Models inspired by biological priors. The Next Frontier of Machine Reasoning: Web-scale Knowledge Graph Exploration using Reinforcement Learning Human experts can form and explore structured mental models in their heads to solve open-ended problems across different domains. Our research seeks to emulate this process through a novel combination of using reinforcement learning agents to perform exploration through a knowledge graph. Knowledge graphs allow us to represent structured information and the logical relations that govern it, unlocking the ability to build reinforcement learning strategies that can learn to solve complex, open-ended problems across web-scale and continuously-evolving domains. You will be leading the research on knowledge representation and how it can serve to build AI systems capable of such complex reasoning. You will work on formulating research problems that explore how Reinforcement Learning algorithms can interact with large and complex knowledge graphs to reason over ambiguous tasks. To do this, you will develop knowledge graph machine learning techniques that will power several tools within our products. Knowledge graph representations (e.g. embeddings) are critical to representing web-scale, structured information in a compact format for a reinforcement learning agent, ensuring scalability. You will lead the efforts on training and validating graph embedding algorithms that capture multi-hop semantics within large web-scale knowledge graphs. Additionally, you will develop link prediction models that will enhance both the reasoning over the knowledge graph and recommendations. About You We are looking for ambitious and independent thinkers who have a deep desire to contribute and want to be part of the team that makes this a reality for humanity. In order to contribute, you should have all of these qualities: You have a PhD degree or equivalent industrial expertise in Graph Machine Learning and its applications. You have a deep understanding of the state-of-the-art in graph machine learning, with a focus on learning graph embeddings and link prediction problems. You have experience in training and tuning various graph ML algorithms including GNNs, Message Passing and Graph Transformers. Experience in building graph-based recommendation systems is a plus. You have 5+ years of programming experience in Python and have development experience with toolkits like PyTorch or Tensorflow and can deploy models with clean APIs. You are equally capable as a software engineer as you are in formulating novel research ideas and your code proves it. Moreover, in order to deeply fit within our culture, you should embody the following: You are capable of reasoning from first-principles, where there is no trodden path, as well as critically evaluate when existing ideas are worth considering. You are articulate and can present your ideas in writing, in person and in small groups educating audiences at all levels on the application of generative models. You have a high β€˜faker’ detector in others, and can critically evaluate truth from fiction in your own work. Your colleagues consider you a highly positive personality, you amplify the energy of others rather than dampen the mood. Your intensity goes from 0-1000 when you become authentically interested in a topic. You not only have interests in systems engineering but are deeply curious about a range of interdisciplinary topics ranging from computational creativity, knowledge graphs, recommendations, web scale search, deep learning, large language models, computer vision, human consciousness, and the opportunity to build truly intelligent systems in software that are inspired by biology. Outside work you can show high creativity and intensity in your pursuits, you cannot easily be characterized in one discipline. You consider yourself an innovator, and original thinker, not a follower. You are looking for a way to contribute to the world and want to join our team to do so. You want to work in person in London. We’ll sponsor your visa. We have the ambition to usher the world towards co-existing alongside Benevolent AGI. Not only do we believe that our work is a credible approach to functionally emulate human reasoning but we believe that this mission can also allow us to conceive many commercial products that yield billions of dollars of commercial revenues that can support an ambitious R&D effort for years to come. We are building for a future where humans coexist alongside benevolent expert systems and seek to advance the field from the front. We are looking for ambitious and independent thinkers who have a deep desire to contribute and want to be part of the team that makes this a reality for humanity. Apply with a short message and a list of your projects, your life story in 5 sentences, your favorite book or artist, and your resume to shravan@atmanlabs.ai. #J-18808-Ljbffr

Research Engineer: Graph Machine Learning employer: Atmanlabs

Atman Labs is an exceptional employer located in London, offering a vibrant work culture that fosters innovation and collaboration among ambitious thinkers. Employees benefit from unique opportunities for professional growth in cutting-edge research areas like Graph Machine Learning, while also enjoying a supportive environment that encourages creativity and interdisciplinary exploration. With a mission to advance the field of AI and create meaningful products, Atman Labs provides a rewarding experience for those eager to contribute to groundbreaking advancements in technology.
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Contact Detail:

Atmanlabs Recruiting Team

shravan@atmanlabs.ai

StudySmarter Expert Advice 🀫

We think this is how you could land Research Engineer: Graph Machine Learning

✨Tip Number 1

Familiarise yourself with the latest advancements in Graph Machine Learning. Stay updated on recent research papers and breakthroughs, especially those related to graph embeddings and link prediction, as this knowledge will help you engage in meaningful conversations during interviews.

✨Tip Number 2

Showcase your programming skills by contributing to open-source projects or creating your own GitHub repositories. Highlighting your experience with Python, PyTorch, or TensorFlow through practical examples can demonstrate your technical capabilities effectively.

✨Tip Number 3

Network with professionals in the field of AI and machine learning. Attend relevant conferences, webinars, or meetups to connect with like-minded individuals and potentially gain insights into the company culture at Atman Labs.

✨Tip Number 4

Prepare to discuss your interdisciplinary interests and how they relate to the role. Being able to articulate your passion for various topics, such as computational creativity or human consciousness, can set you apart as a candidate who embodies the innovative spirit Atman Labs is looking for.

We think you need these skills to ace Research Engineer: Graph Machine Learning

Graph Machine Learning
Knowledge Graph Representation
Reinforcement Learning
Graph Neural Networks (GNNs)
Message Passing Algorithms
Graph Transformers
Link Prediction Models
Python Programming
PyTorch
TensorFlow
API Development
Research Problem Formulation
Data Analysis
Interdisciplinary Knowledge
Effective Communication
Critical Thinking
Creativity
Software Engineering

Some tips for your application 🫑

Tailor Your Message: Craft a short message that highlights your passion for the role and how your background aligns with Atman Labs' mission. Make sure to mention specific aspects of their work that resonate with you.

Showcase Your Projects: Prepare a list of your relevant projects, particularly those related to Graph Machine Learning. Highlight your contributions and the impact of these projects to demonstrate your expertise.

Life Story in Five Sentences: Summarise your life story in five sentences, focusing on key experiences that shaped your career and interests. This is your chance to show your personality and unique journey.

Select Your Favourite Book or Artist: Choose a book or artist that has influenced you and explain why. This can provide insight into your interests and values, making your application more memorable.

How to prepare for a job interview at Atmanlabs

✨Showcase Your Expertise

Be prepared to discuss your PhD or equivalent experience in Graph Machine Learning. Highlight specific projects where you've applied graph embeddings and link prediction techniques, as this will demonstrate your deep understanding of the subject.

✨Demonstrate Your Programming Skills

Since programming is crucial for this role, be ready to talk about your experience with Python and frameworks like PyTorch or TensorFlow. Consider sharing examples of how you've deployed models with clean APIs, as this will showcase your software engineering capabilities.

✨Emphasise Your Research Ideas

Prepare to articulate novel research ideas related to knowledge representation and reinforcement learning. This is a chance to show your ability to think critically and creatively, which aligns with the company's focus on innovation.

✨Exhibit Your Passion and Curiosity

Atman Labs values individuals who are intensely curious and passionate about interdisciplinary topics. Be ready to discuss your interests outside of work and how they contribute to your innovative thinking, as this will resonate with their culture.

Research Engineer: Graph Machine Learning
Atmanlabs
A
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