Deep Learning Scientist

Permanent employee, Full-time · Munich

ramblr
Actionable Insights with Industrial-Grade Video Understanding

AI for the Physical World. At Ramblr, we go beyond superficial video analysis to extract deep context from egocentric videos. Our technology provides a comprehensive understanding of actions, individual objects, and their relationships. Prompt Ramblr’s AI assistant to unlock precise insights and pinpoint specific moments in thousands of hours of multimodal videos captured from a first-person perspective. Are you excited to become a Ramblr and join us at the intersection of AI and spatial computing? If so, you can apply directly to the job posting or use the open application form.

We look forward to hearing from you !
Job Description
We are looking for a strong deep learning scientist who can develop and monitor state-ot-the-art AI models. You quickly and efficiently probe and evaluate deep learning models for new use cases and help bring them into production. You quantitatively evaluate the performance of models and optimize the interplay between different components of our deep learning stack.

You work closely at the intersection of research and product development. You are a key player in extending our offering for internal use and customer use-cases - field testing and iterating quickly.
Your profile
  • Passion for solving the hard problems in deep learning
  • Required:
    • Data driven QA: definition of useful metrics, implementation of processes to measure metrics, data visualization
    • Machine Learning: model analysis, data loading pipelines, data monitoring, neural network architectures (especially Transformer / CNNs), model training, PyTorch
    • Computer Vision: CNNs, Vision Transformers, spatio-temporal data, image- and video embeddings, image augmentation
    • Experience with scientific python libraries such as: numpy, openCV, matplotlib, scipy, scikit-learn, scikit-optimize, pandas, seaborn
    • General: git VCS, code reviews, development on Linux, distributed computing concepts
    • Proficiency in python-based collaborative software engineering: follow consistent style-guide, clean design patterns, self-documented code, unit/integration tests, type annotations
  • Optional:
    • Natural Language Processing: Transformer architectures, vision-language alignment, prompt engineering
    • Video understanding: Action understanding, activity prediction, scene graph prediction
    • Computer vision: GANs, image morphology, optical flow, depth/3D reconstruction
    • Ability to apply classical machine learning algorithms such as boosted trees, clustering and alike
    • Acceleration in python: numba, c++/CUDA extensions, cython, PyTorch c++/CUDA extensions, ONNX, TPUs
  • Education
    • M.Sc./Ph.D. in computer science, physics or mathematics with focus on computer vision, machine learning or a related field
    • 3+ years of relevant work experience
    • Fluent in English
Why us?
  • Join a highly motivated team with super smart people in a well-funded, early-stage startup
  • Take part in an incredible journey and participate in our equity incentive plan 
  • Become part of an international team of experienced entrepreneurs and deep-learning experts
  • Play a decisive role in shaping a company with a creative working environment and streamlined decision-making
  • Enjoy full responsibility for your tasks and your work area
  • Come have fun with us, learn from your mistakes and bring good vibes!
About us
Founded by experienced tech entrepreneurs and deep-learning scientists with proven track records, we have embarked on a mission to bring AI to the physical world and unlock next-gen intelligent AR/XR devices. 
We are looking forward to hearing from you!
Thank you for your interest in ramblr. Please provide the following information and we will get back to you as soon as possible. If you experience difficulties with the upload of your data, please don't hesitate to reach out to ramblr-jobs@m.personio.de
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