Biostatistician 2

Stanfordlivetickets

Palo Alto (CA)

On-site

USD 115,000 - 134,000

Full time

14 days+
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Benefits offered by this job

Health benefits
Tuition and training assistance
Paid time off (18+ days)

Job summary

Stanford University seeks a Biostatistician 2 to collaborate with investigators across the university on data analysis projects focused on electronic health record and administrative claims data.

The role emphasizes causal inference methods, large real-world datasets (Cosmos, Truveta, MarketScan, CMS), and mentoring of junior staff, with opportunities to teach and contribute to publication efforts.

Qualifications

  • Master's degree in biostatistics, statistics or related field with at least 3 years of experience.
  • Proficient in at least two of R, SAS, SPSS, or STATA.
  • Excellent communication skills and ability to work across clinical and policy disciplines.

Responsibilities

  • Apply causal inference methods such as entropy balancing, IVs, regression decomposition, and propensity scoring.
  • Work with EHR datasets (Cosmos, Truveta) for large real-world observational analyses.
  • Design studies and analysis plans; mentor junior analysts and students.
  • Develop data pipelines with ETL for large datasets and collaborate across projects.
  • Work with OMOP data model and CMS/MarketScan datasets; publish results in journals.

Skills

Causal inference
Real‑world data
Interdisciplinary collaboration
Mentoring
Communication

Education

Master's degree in biostatistics or related field

Tools

R
SAS
SPSS
STATA
MySQL
RedCAP
OMOP
ETL
Cosmos
Truveta
MarketScan

Job description

The Center for Population Health Sciences (PHS) at Stanford University is seeking a Biostatistician 2 to work with investigators from across the University on data analysis projects, with a focus on bringing demonstrated expertise in electronic health record data and administrative claims data to these collaborations. The Stanford Center for Population Health Sciences (PHS) is dedicated to improving population health by harnessing the power of interdisciplinary research and data analytics. PHS promotes collaboration among researchers, clinicians, and community partners to facilitate innovative research and practical solutions aimed at enhancing health at a population level. The center employs various methodologies, including health informatics, predictive analytics, and community-engaged research, to address pressing public health issues like chronic diseases and mental health. In addition to research, PHS is committed to education, providing training and mentorship for emerging public health and medical professionals to equip them with the necessary skills to tackle contemporary health challenges. Through its comprehensive approach, the center seeks to inform health policies and clinical practices, striving to influence both local and global health initiatives while fostering a culture of health-conscious innovation and collaboration within the community.

This position requires working with some independence, consulting with investigators to refine research questions, define hypotheses, and to design studies and devise analysis plans. The candidate will also work with senior statistician(s) to implement analysis plans and publish findings and present results orally to clinical investigators. Strengths include experience in interdisciplinary collaboration, statistics mentoring, and self-motivated problem solving. The ideal candidate will have interests in causal inference, ethical implementation of machine learning, and experience in working with Cosmos, MarketScan, and CMS claims data.

Duties include:
  • Application of causal inference methods such as entropy balancing, instrumental variables, regression decomposition, and propensity scoring approaches
  • Work with electronic health record datasets such as Cosmos and Truveta to conduct large real-world observational data analysis
  • Applying epidemiologic concepts for appropriate study design principles
  • Communicating clearly and effectively across clinical and policy disciplines
  • Using clinical terminology and disease etiologies when working with clinical experts and communicating within that context
  • Taking complex statistical and analytical approaches and tailoring them for the audience with a teaching orientation
  • Mentoring and teaching students, junior analysts, and trainees in medicine, economics, and public health studies
  • Constructing complex data pipelines with extract, transform, and load processes (ETL) for large datasets
  • Using private and public administrative claims datasets such as MarketScan, Medicare, and/or Medicaid.
  • Writing methodology and results sections in manuscripts for medical and public health journals
  • Working with the OMOP common data model (either as a developer or a user)
  • Validating raw data and assessing its usefulness for downstream processing
  • Flexibly managing several collaborations and working as a collaborator on multiple projects
  • Knowledge of, or ability to learn several commonly applied statistical methods such as hierarchical regression models with random intercepts and slopes, parametric survival models including accelerated failure time models, effect modification and moderation methods, understanding of the basic principles of risk adjustment within the CMS framework, econometric modeling for cost variables with highly skewed distributions, generalized linear models including repeated measures analysis, machine learning approaches such as XGBoost, Explainable Boosting Machines (EBMs), random forests, random survival forests, cluster analysis, latent class analysis, and other classification approaches

* - Other duties may also be assigned

The expected pay range for this position is $115,103 to $134,261 per annum.

Stanford University provides pay ranges representing its good faith estimate of the salary or hourly wage the university reasonably expects to pay for a position upon hire. The pay offered to a selected candidate will be determined based on factors such as (but not limited to) the scope and responsibilities of the position, the qualifications of the selected candidate, departmental budget availability, internal equity, geographic location and external market pay for comparable jobs. At Stanford University, base pay represents only one aspect of the comprehensive rewards package.

The Cardinal at Work website ( https://cardinalatwork.stanford.edu/benefits-rewards ) provides detailed information on Stanford’s extensive range of benefits and rewards offered to employees. Specifics about the rewards package for this position may be discussed during the hiring process.

Consistent with its obligations under the law, the University will provide reasonable accommodations to applicants and employees with disabilities. Applicants requiring a reasonable accommodation for any part of the application or hiring process should contact Stanford University Human Resources at stanfordelr@stanford.edu . For all other inquiries, please submit a contact form .

Stanford is an equal employment opportunity and affirmative action employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, protected veteran status, or any other characteristic protected by law.

The Center for Population Health Sciences (PHS) at Stanford University is seeking a Biostatistician 2 to work with investigators from across the University on data analysis projects, with a focus on bringing demonstrated expertise in electronic health record data and administrative claims data to these collaborations. The Stanford Center for Population Health Sciences (PHS) is dedicated to improving population health by harnessing the power of interdisciplinary research and data analytics. PHS promotes collaboration among researchers, clinicians, and community partners to facilitate innovative research and practical solutions aimed at enhancing health at a population level. The center employs various methodologies, including health informatics, predictive analytics, and community-engaged research, to address pressing public health issues like chronic diseases and mental health. In addition to research, PHS is committed to education, providing training and mentorship for emerging public health and medical professionals to equip them with the necessary skills to tackle contemporary health challenges. Through its comprehensive approach, the center seeks to inform health policies and clinical practices, striving to influence both local and global health initiatives while fostering a culture of health-conscious innovation and collaboration within the community.

This position requires working with some independence, consulting with investigators to refine research questions, define hypotheses, and to design studies and devise analysis plans. The candidate will also work with senior statistician(s) to implement analysis plans and publish findings and present results orally to clinical investigators. Strengths include experience in interdisciplinary collaboration, statistics mentoring, and self-motivated problem solving. The ideal candidate will have interests in causal inference, ethical implementation of machine learning, and experience in working with Cosmos, MarketScan, and CMS claims data.

Duties include:
  • Application of causal inference methods such as entropy balancing, instrumental variables, regression decomposition, and propensity scoring approaches
  • Work with electronic health record datasets such as Cosmos and Truveta to conduct large real-world observational data analysis
  • Applying epidemiologic concepts for appropriate study design principles
  • Communicating clearly and effectively across clinical and policy disciplines
  • Using clinical terminology and disease etiologies when working with clinical experts and communicating within that context
  • Taking complex statistical and analytical approaches and tailoring them for the audience with a teaching orientation
  • Mentoring and teaching students, junior analysts, and trainees in medicine, economics, and public health studies
  • Constructing complex data pipelines with extract, transform, and load processes (ETL) for large datasets
  • Using private and public administrative claims datasets such as MarketScan, Medicare, and/or Medicaid.
  • Writing methodology and results sections in manuscripts for medical and public health journals
  • Working with the OMOP common data model (either as a developer or a user)
  • Validating raw data and assessing its usefulness for downstream processing
  • Flexibly managing several collaborations and working as a collaborator on multiple projects
  • Knowledge of, or ability to learn several commonly applied statistical methods such as hierarchical regression models with random intercepts and slopes, parametric survival models including accelerated failure time models, effect modification and moderation methods, understanding of the basic principles of risk adjustment within the CMS framework, econometric modeling for cost variables with highly skewed distributions, generalized linear models including repeated measures analysis, machine learning approaches such as XGBoost, Explainable Boosting Machines (EBMs), random forests, random survival forests, cluster analysis, latent class analysis, and other classification approaches

* - Other duties may also be assigned

The expected pay range for this position is $115,103 to $134,261 per annum.

Stanford University provides pay ranges representing its good faith estimate of the salary or hourly wage the university reasonably expects to pay for a position upon hire. The pay offered to a selected candidate will be determined based on factors such as (but not limited to) the scope and responsibilities of the position, the qualifications of the selected candidate, departmental budget availability, internal equity, geographic location and external market pay for comparable jobs. At Stanford University, base pay represents only one aspect of the comprehensive rewards package.

The Cardinal at Work website ( https://cardinalatwork.stanford.edu/benefits-rewards ) provides detailed information on Stanford’s extensive range of benefits and rewards offered to employees. Specifics about the rewards package for this position may be discussed during the hiring process.

Consistent with its obligations under the law, the University will provide reasonable accommodations to applicants and employees with disabilities. Applicants requiring a reasonable accommodation for any part of the application or hiring process should contact Stanford University Human Resources at stanfordelr@stanford.edu . For all other inquiries, please submit a contact form .

Stanford is an equal employment opportunity and affirmative action employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, protected veteran status, or any other characteristic protected by law.

Qualifications:
DESIRED QUALIFICATIONS:
EDUCATION & EXPERIENCE (REQUIRED):

Master's degree in biostatistics, statistics or related field and at least 3 years of experience.

KNOWLEDGE, SKILLS AND ABILITIES (REQUIRED):
  • Proficient in at least two of R, SAS, SPSS, or STATA.
  • Skills in descriptive analysis, modeling of data, and graphic interfaces.
  • Outstanding ability to communicate technical information to both technical and non-technical audiences.
  • Demonstrated excellence in at least one area of expertise, which may include coordinating studies; statistical methodology such as missing data, survival analysis, statistical genetics, or informatics; statistical computing; database design (e.g., expertise in RedCAP or MySQL); graphical techniques (e.g., expertise in Illustrator).
CERTIFICATIONS & LICENSES:

None

PHYSICAL REQUIREMENTS*:
  • Frequently perform desk based computer tasks, seated work and use light/ fine grasping.
  • Occasionally stand, walk, and write by hand, lift, carry, push pull objects that weigh up to 10 pounds.

* - Consistent with its obligations under the law, the University will provide reasonable accommodation to any employee with a disability who requires accommodation to perform the essential functions of his or her job.

WORKING CONDITIONS:

May work extended or non-standard hours based on project or business cycle needs.

  • Fixed Term Y
  • Stanford Schools and Units School of Medicine
  • Full time or Part time Full Time
  • Regular or Temporary Regular
  • Job Category Information Analytics
  • Posting Date 06/02/2026, 01:35 PM
  • Grade I
  • Job Identification 109350
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Benefits that support you, and your future

18+ PTO days per year

Health benefits start when you start

Flexible work options

$6000+ annual tuition and training assistance

403(b) plan

Mental health and wellness programs

Free and discounted commuter transportation

Applies to regular full-time positions.

Notice to Applicants

The job duties listed are typical examples of work performed by positions in this job classifications and are not designed to contain or be interpreted as a comprehensive inventory of all duties, tasks and responsibilities. Specific duties and responsibilities may vary depending on department or program needs without changing the general nature and scope of the job or level of responsibility. Employees may also perform other duties as assigned.

Consistent with its obligations under the law, the University will provide reasonable accommodation to any employee with a disability who requires accommodation to perform the essential functions of their job.

Stanford is an equal employment opportunity and affirmative action employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, protected veteran status, or any other characteristic protected by law.

Stanford University provides job pay ranges representing its good faith estimate of what the university reasonably expects to pay for a particular job. The specific pay offered to a selected candidate will be determined based on a wide range of factors that are unique to each candidate, including but not limited to geographic work location, relevant knowledge, skills and abilities, relevant education, years of relevant experience, depth and breadth of relevant experience, and performance; further including but not limited to other business and organization needs such as the scope and responsibilities of the position, the minimum qualifications, departmental budget availability, and market and internal equity across the university, school/ unit, department, as well as job reporting relationships.

Why work at Stanford

World-changing work in a culture of continuous learning

An inspiring community that values collaboration

High-quality health and wellness benefits that put you and your family first

Access to world-class education and career development, with tuition reimbursement, training assistance, and more

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