NIST PREP Lead Data Infrastructure Software Engineer

Southeastern Universities Research Association

$110K — $130K *
Education, Government & Non-Profit
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Doctoral degree in computer science, systems engineering, statistics, physics, or related field.
  • Proven leadership in cross-disciplinary team environments.
  • Experience in scientific computing and workflow development.
  • Applied machine learning and data science expertise.
  • Knowledge of reproducible research practices and archival datasets.
  • Passion for exploring diverse measurement science techniques.

Responsibilities

  • Lead the development of scientific computing applications and tools in collaboration with domain experts.
  • Guide the creation and deployment of a robust data repository for interlaboratory measurements.
  • Conduct data curation and engineering to convert raw data into machine-actionable formats following FAIR principles.
  • Manage and consolidate data streams from atomic clocks and related network components.
  • Develop methodologies to collate complex datasets from multimodal data sources.
  • Extract insights from curated data using statistical methods and AI techniques.

Benefits

  • Opportunities for professional growth and advancement.
  • Access to cutting-edge research in measurement science and technology.
  • Collaboration with leading experts in scientific fields.
  • Potential for interdisciplinary engagement across various scientific domains.
Full Job Description
The Statistical Engineering Division at the National Institute of Standards and Technology is seeking immediate applications for a post-doctoral position focusing on leading the development of scientific computing applications and tools. The tools will include both public-facing web infrastructure and code bases used by bench scientists for data collection and analysis. A primary focus will be establishing a central, high-resolution data repository for international clock and frequency standard measurements, providing essential data and collaborative infrastructure for the upcoming redefinition of the second.

The candidate's primary responsibilities may include:

  • Leading the development of scientific computing applications and tools by partnering with domain experts, understanding the fundamental physics and meaning of the data, understanding stakeholder goals, and translating those goals into actionable software development plans and requirements.
  • Guiding the creation and deployment of a data repository to store, maintain, and share results of interlaboratory measurements and analyses
  • Guiding and performing the data curation and data engineering work to transform raw data into machine actionable datasets as guided by the FAIR data principles
  • Managing and consolidating data streams originating from atomic clocks and the associated network components including, e.g., optical fiber links and optical frequency combs.
  • Developing methodology for collating complex datasets involving multimodal data or heterogeneous processing pathways
  • Guiding and extracting information from the curated data using statistical techniques and/or AI approaches


The ideal candidate will have the following skills, experience, and/or qualifications:

  • Doctoral degree in at least one of the following fields: computer science, systems engineering, statistics, physics, or a closely-related discipline
  • Proven leadership in cross-disciplinary environments; able to guide collaborative teams and provide strong scientific communication.
  • Experience in scientific computing, workflow development and data management.
  • Applied machine learning / data science.
  • Reproducible research and production/dissemination of archival datasets.
  • Enthusiasm for learning about diverse measurement science techniques.


PREP0005055

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