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英国剑桥贝叶斯机器学习博士后职位

2018年04月02日
来源:知识人网
摘要:

Postdoctoral Long Title:

Predicting drug toxicity with Bayesian machine learning models

 

We're currently looking for talented scientists to join our innovative academic-style Postdoc. From our centre in Cambridge, UK you'll be in a global pharmaceutical environment, contributing to live projects right from the start. Yo u'll take part in a comprehensive training programme, including a focus on drug discovery and development, given access to our existing Postdoctoral research, and encouraged to pursue your own independent research. It's a newly expanding programme spanning a range of therapeutic areas across a wide range of disciplines.

 

What's more, you'll have the support of a leading academic advisor, who'll provide you with the guidance and knowledge you need to develop your career.

 

About AstraZeneca

AstraZeneca is a global, innovation-driven biopharmaceutical business that focuses on the discovery, development and commercialisation of prescription medicines for some of the world's most serious diseases. But we're more than one of the world's leading pharmaceutical companies. At AstraZeneca, we're proud to have a unique workplace culture that inspires innovation and collaboration. Here, employees are empowered to express diverse perspectives – and are made to feel valued, energised and rewarded for their ideas and creativity.

 

You will be part of the Quantitative Biology group and develop comprehensive Bayesian machine learning models for predicting drug toxicity in liver, heart, and other organs. This includes predicting the mechanism as well as the probability of toxicity by incorporating scientific knowledge into the prediction problem, such as known causal relationships and known toxicity mechanisms. Bayesian models will be used to account for uncertainty in the inputs and propagate this uncertainty into the predictions. In addition, you will promote the use of Bayesian methods across safety pharmacology and biology more generally. You are also expected to present your findings at key conferences and in leading publications

 

This project is in collaboration with Prof. Andrew Gelman at Columbia University, and Dr Stanley Lazic at AstraZeneca.

 

Education and ExperienceRequired:

Essential:

  • PhD in Statistics, Computer Science, Data Science, or similar
  • Excellent knowledge of either R or Python (ideally both)

 

Desirable:

  • Knowledge of Bayesian statistics
  • Knowledge of modern Bayesian software such as Stan and PyMC3
  • Knowledge of (or an interest in) life sciences

 

This is a 3 year programme. 2 years will be a Fi xed Term Contract, with a 1 year extension which will be merit based. The role will be based at Cambridge, UK with a competitive salary on offer

To apply for this position, please click the apply link below.

 

Advert opening date – 5th March 2018

Advert closing date – 13th May 2018

 

AstraZeneca welcomes applications from all sections of the community.

AstraZeneca is an equal opportunity employer. AstraZeneca will consider all qualified applicants for employment without discrimination on grounds of disability, sex or sexual orientation, pregnancy or maternity leave status, race or national or ethnic origin, age, religion or belief, gender identity or re-assignment, marital or civil partnership status, protected veteran status (if applicable) or any other characteris tic protected by law.