计算方法博士职位

PhD Position in Computational Methods for Digital Twins of Embryonic Development & Disease

Eidgenössische Technische Hochschule Zürich ETH · 瑞士 · Basel

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研究内容
研究内容:开发算法和软件用于生物系统的数据驱动建模
申请条件
要求硕士学位,具有计算机科学、科学计算或相关领域的背景,具有编程技能和数值方法、优化、统计推断或机器学习经验
待遇
提供有竞争力的博士生工资和条件,包括会议旅行和培训
申请方式
申请方式:在线申请,需提交动机信、简历、学位证书和成绩单、两位推荐人的联系方式
材料清单
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  • 简历
  • 学位证书和成绩单
  • 两位推荐人的联系方式

由 @cf/meta/llama-3.3-70b-instruct-fp8-fast 生成,博士岗判定置信度 90%。

结构化信息

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学科
计算机科学
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导师
Prof Dagmar Iber
来源
瑞士高校与研究机构官方招聘 · 最近核对 2026-10-07
判定依据(原文摘录)
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    PhD Position in Computational Methods for Digital Twins of Embryonic Development & Disease
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    good written and spoken English
原文

PhD Position in Computational Methods for Digital Twins of Embryonic Development & Disease

100%, Basel, fixed-term

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The Computational Biology Group (Prof Dagmar Iber) at D-BSSE develops digital twins of embryonic development and reproductive health using image-based mechanistic modelling and simulation.

Project background

Digital twins of living systems are a hard computational problem: nonlinear, high-dimensional models with uncertain parameters that must be fitted to noisy data, and simulations so expensive that fitting them demands new algorithms and scalable software. We apply this to real questions, from how tissues self-organise during embryonic development to digital twins that support IVF treatment planning. You will build the algorithmic infrastructure that makes this possible, working with modellers, experimentalists and clinicians, and building on our open-source simulation tools.

Job description

The PhD position focuses on developing the algorithmic infrastructure behind our digital twins. You will:

• develop and benchmark methods for parameter estimation and uncertainty quantification, from classical optimisation and Bayesian inference to physics-informed neural networks (PINNs) and other machine-learning approaches

• build and extend our simulation environment, with a focus on performance, scalability and reproducibility

• apply your methods to real models and data, from imaging-based models of tissue development to our digital twin of the hormonal cycle and IVF treatment, together with the modellers, experimentalists and clinical collaborators in the group

• publish your results and present them at international conferences

• contribute to the group's open-source software and to teaching

Profile

We are looking for a self-motivated candidate who is enthusiastic about developing algorithms and software for data-based modelling of biological systems. The position suits someone with training in computer science, scientific computing or a related quantitative field, and an interest in applying it to biology and biomedicine.

You should have:

• a Master's degree in Computer Science, Computational Science and Engineering, Applied Mathematics, Physics or a related field

• strong programming skills, e.g. in Python, Julia or C++, and experience in writing clean, well-tested code

• experience in numerical methods, optimisation, statistical inference or machine learning, gained through coursework, a thesis or a project

• an interest in biology and biomedicine and the willingness to learn the biological background of the project; prior knowledge of biology is not required

• good written and spoken English

Experience with PDE-based simulations, finite element methods, high-performance computing or deep-learning frameworks (e.g. PyTorch, JAX) is an advantage.

Workplace

Workplace

We offer

• A PhD position in an interdisciplinary, international research environment at the interface of mathematics, computing and biology

• Close collaboration with leading experimental groups and clinical partners

• Excellent infrastructure and computing resources at ETH Zurich

• Support for your scientific development, including conference travel and training

• Competitive ETH doctoral salary and conditions

chevron_right Working, teaching and research at ETH Zurich

We value diversity and sustainability

In line with our values , ETH Zurich encourages an inclusive culture. We promote equality of opportunity, value diversity and nurture a working and learning environment in which the rights and dignity of all our staff and students are respected. Visit our Equal Opportunities and Diversity website to find out how we ensure a fair and open environment that allows everyone to grow and flourish. Sustainability is a core value for us – we are consistently working towards a climate-neutral future .

Curious? So are we.

We look forward to receiving your online application with the following documents:

• A letter of motivation

• CV

• BSc & MSc diplomas and transcripts

• Contact details of 2 referees

Applications will be reviewed on a rolling basis until the position is filled.

Further information about the CoBi group can be found on our website . Questions regarding the position should be directed to Prof Dagmar Iber, dagmar.iber@bsse.ethz.ch (no applications).

Please note that we exclusively accept applications submitted through our online application portal. Applications via email or postal services will not be considered.

We would like to point out that the pre-selection is carried out by the responsible recruiters and not by artificial intelligence.

About ETH Zürich

ETH Zurich is one of the world’s leading universities specialising in science and technology. We are renowned for our excellent education, cutting-edge fundamental research and direct transfer of new knowledge into society. Over 30,000 people from more than 120 countries find our university to be a place that promotes independent thinking and an environment that inspires excellence. Located in the heart of Europe, yet forging connections all over the world, we work together to develop solutions for the global challenges of today and tomorrow.

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