עדיין מחפשים עבודה במנועי חיפוש? הגיע הזמן להשתדרג!
במקום לעבור לבד על אלפי מודעות, Jobify מנתחת את קורות החיים שלך ומציגה לך רק משרות שבאמת מתאימות לך.
מעל 80,000 משרות • 4,000 חדשות ביום
חינם. בלי פרסומות. בלי אותיות קטנות.
About This Role
- Conceptualize, design, and implement novel deep learning architectures for biological data, with a strong focus on large-scale models such as Large Language Models (LLMs), Transformers, and State Space Models (SSMs).
- Develop multimodal learning systems that integrate heterogeneous data types (e.g., clinical time-series, imaging, genomics, and text) for improved representation and prediction.
- Develop both foundational and generative models and agentic AI systems, including multi-step reasoning, tool use, and autonomous decision-making capabilities.
- Develop digital twin systems for healthcare, combining mechanistic models, physiological data, and AI to simulate disease progression, treatment response, and patient-specific trajectories.
- Implement deep learning systems integrated with agents, enabling end-to-end workflows that combine learning, planning, and execution.
- Evaluate model performance, analyze results, and iterate on designs to achieve optimal outcomes.
- Apply your knowledge of distributed training to build high-quality code for training, optimizing, and deploying large-scale models, while managing complex datasets.
- Collaborate closely with a diverse team of researchers, bioinformaticians, and domain experts in a highly interdisciplinary environment.
- We are looking for individuals who demonstrate a strong foundation in deep learning and a proven ability to translate innovative ideas into practical, scalable systems.
- PhD in Machine Learning, Computer Science, Engineering, or a related discipline.
- 8+ years of hands-on experience in developing, training, and deploying deep learning models at scale, including LLMs, Transformers, SSMs, and/or generative models.
- Experience with multimodal learning and integrating diverse data modalities is highly valued.
- Experience with agentic AI frameworks or systems (e.g., tool-augmented models, planning-based agents, or multi-agent systems) is a strong advantage.
- Strong expertise in distributed training, optimization, and inference.
- Proven ability to lead independent research, implement robust solutions, and rigorously evaluate performance.
- Track record of publications and presentations at top conferences.
- Hands-on experience building advanced AI systems, including agentic AI (RAG, tools, planning, multi-agent) and multimodal models combining vision, language, and structured/time-series data.
- Proven track record optimizing large-scale ML systems, with experience in data pipelines and distributed frameworks for LLM-scale data.
- Background in bioinformatics or digital biology, with experience working across interdisciplinary teams spanning research, engineering, and clinical domains.
- Experience in building or implementing digital twin systems, simulation frameworks, or data-driven modeling in healthcare or related domains is a strong plus.
- We are an equal opportunity employer and value diversity at our company. We do not discriminate on the basis of race, religion, color, national origin, sex, gender, gender expression, sexual orientation, age, marital status, veteran status, or disability status. We will ensure that individuals with disabilities are provided a reasonable accommodation to participate in the job application or interview process, to perform essential job functions, and to receive other benefits and privileges of employment. Please contact us to request an accommodation.
PyTorchCUDAC++PythonTransformersDistributed TrainingMultimodal ModelsRAG
במקום לעבור לבד על אלפי מודעות, Jobify מנתחת את קורות החיים שלך ומציגה לך רק משרות שבאמת מתאימות לך.
מעל 80,000 משרות • 4,000 חדשות ביום
חינם. בלי פרסומות. בלי אותיות קטנות.
שאלות ותשובות עבור משרת Senior Applied AI Researcher, Digital Biology
בתפקיד זה, תהיו אחראים/ות לתכנון, עיצוב ויישום ארכיטקטורות למידה עמוקה חדשניות עבור נתונים ביולוגיים, תוך התמקדות במודלים בקנה מידה גדול כמו LLMs ו-Transformers. כמו כן, תפתחו מערכות למידה מולטימודליות המשלבות סוגי נתונים הטרוגניים (כגון סדרות זמן קליניות, הדמיה, גנומיקה וטקסט) ותבנו מערכות תאום דיגיטליות עבור שירותי בריאות.
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