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Remote Bioinformatics Computational Biology Jobs in Oregon

D. in Bioinformatics, Computational Biology, Genetics, or a related field * At least 10 years of relevant experience * Proven expertise in bioinformatics, particularly in genomics data analysis.

Senior Program Manager

OR · On-site +1

$115K - $116K/yr

Remote or On-Site in Boulder, CO (Foresight Dx business unit, a Natera company) Foresight ... We sit at the intersection of molecular biology, bioinformatics, and next-generation sequencing ...

Remote Bioinformatics Computational Biology information

What is a remote bioinformatics computational biology job?

Remote bioinformatics computational biology jobs involve analyzing and interpreting biological data using computational tools and techniques, all while working from a location outside of a traditional office or laboratory. Professionals in this field typically work with large datasets such as DNA, RNA, or protein sequences, developing algorithms and software to help make sense of complex biological information. These roles often require expertise in programming, statistics, and biology, and they enable collaboration with scientists and researchers around the world through digital platforms. Working remotely in this field provides flexibility and access to global opportunities without the need to relocate.

How do remote bioinformatics computational biologists typically collaborate with research teams across different time zones?

Remote bioinformatics computational biologists often work with multidisciplinary teams spread across various locations and time zones. Collaboration is typically facilitated through regular virtual meetings, project management platforms, and version-controlled code repositories. Clear communication, flexible scheduling, and detailed documentation are crucial to ensure smooth workflow and avoid miscommunication. Many teams adopt agile methodologies to prioritize tasks and keep everyone aligned, regardless of geographical differences.

What are the key skills and qualifications needed to thrive as a remote bioinformatics computational biologist, and why are they important?

To thrive as a Remote Bioinformatics Computational Biologist, you typically need a strong background in molecular biology, genetics, and computer science, often supported by a degree in bioinformatics, computational biology, or a related field. Proficiency with programming languages (such as Python, R, or Perl), bioinformatics tools (like BLAST, GATK, or Bioconductor), and familiarity with high-performance computing environments are crucial. Excellent problem-solving, communication, and collaboration skills help you interpret complex data and work effectively with interdisciplinary teams across remote settings. These skills are essential for analyzing and interpreting large-scale biological data, driving research insights, and contributing to scientific discoveries in a distributed work environment.

What is the difference between Remote Bioinformatics Computational Biology vs Remote Genomics Data Analyst?

AspectRemote Bioinformatics Computational BiologyRemote Genomics Data Analyst
Required CredentialsDegree in Bioinformatics, Computational Biology, or related fields; proficiency in programming and data analysisDegree in Genetics, Genomics, or related fields; experience with data analysis tools
Work EnvironmentResearch labs, biotech companies, academic institutions, often collaborative and project-basedHealthcare, research institutions, biotech firms; focus on data interpretation and reporting
Employer & Industry UsageUsed in biotech, pharma, academia for research and developmentCommon in healthcare, diagnostics, and research sectors

Remote Bioinformatics Computational Biology involves developing algorithms and analyzing biological data, often requiring programming skills and a research-focused environment. In contrast, Remote Genomics Data Analysts primarily interpret genomic data for clinical or research purposes, focusing on data reporting. Both roles share similar credentials but differ in their specific applications and work settings.

What are the most commonly searched types of Bioinformatics Computational Biology jobs in Oregon?

The most popular types of Bioinformatics Computational Biology jobs in Oregon are:

What are popular job titles related to Remote Bioinformatics Computational Biology jobs in Oregon?

For Remote Bioinformatics Computational Biology jobs in Oregon, the most frequently searched job titles are:

What job categories do people searching Remote Bioinformatics Computational Biology jobs in Oregon look for?

The top searched job categories for Remote Bioinformatics Computational Biology jobs in Oregon are:

What cities in Oregon are hiring for Remote Bioinformatics Computational Biology jobs?

Cities in Oregon with the most Remote Bioinformatics Computational Biology job openings:

Infographic showing various Remote Bioinformatics Computational Biology job openings in Oregon as of August 2026, with employment types broken down into 75% Full Time, 8% Part Time, and 17% Contract. Highlights an 100% Remote job distribution.

Staff Scientist, Bioinformatics/RWD

Natera

OR • On-site, Remote

Full-time

Re-posted 15 hours ago


Natera rating

7.8

Company rating: 7.8 out of 10

Based on 39 frontline employees who took The Breakroom Quiz

54th of 121 rated laboratories


Job description

Natera is seeking an innovative and driven bioinformatics scientist to lead and conduct cutting-edge real-world evidence (RWE) analyses and predictive analytics across oncology, organ health, and women's health datasets. This unique role blends expertise in bioinformatics, artificial intelligence (AI), machine learning (ML), and the manipulation of complex real-world data (RWD). Candidate will leverage advanced AI methodologies to extract actionable clinical insights from vast multimodal datasets (genomics, clinical, demographic), driving impactful data visualization and advancing our application of genomics in a real-world clinical setting. The ideal candidate should have strong project management skills, and a keen eye for visualizing complex data in an impactful way to advance our understanding and application of genomics in a real-world setting.

Key Responsibilities:

  • Bioinformatics  & Genomic Analysis: Lead the analysis of large-scale cancer and germline multi-omics datasets to extract meaningful insights. Utilize and augment traditional bioinformatics tools with AI-driven techniques to interpret genomic data within the context of RWE studies
  • RWD/RWE Analysis: Lead the extraction, curation, and analysis of large-scale RWD sources, including Electronic Health Records (EHR), claims data, and patient registries. Design and execute robust RWE studies to support clinical, commercial, and regulatory objectives.
  • Data Integration and Management: Facilitate the integration of omics data with other types of data (clinical, demographic, etc.) to enrich the analyses. Manage large datasets and ensure data integrity and confidentiality.
  • AI & Predictive Analytics: Develop, train, and deploy advanced artificial intelligence and machine learning models (e.g., Deep Learning, NLP, ensemble methods) to forecast trends, patient outcomes, and biomarker discovery using RWD and genomics data. Apply state-of-the-art AI frameworks to identify hidden patterns that inform clinical decision-making and product strategy.
  • Unstructured Data Integration: Facilitate the integration of highly complex, multimodal datasets. Utilize NLP and LLMs to extract valuable structured insights from unstructured clinical notes, pathology reports, and other disparate RWD sources. Manage large datasets while ensuring strict data integrity and confidentiality.
  • Project Management: Oversee and manage RWD and genomics projects from inception to completion. Ensure that projects are completed on time, within budget, and meet high-quality standards.
  • Cross-Functional Collaboration: Work closely with other departments such as R&D, Data Science, Business Development, Medical Affairs, Product Management, and Engineering to integrate genomics and clinical data into broader research and development initiatives.
  • Reporting and Communication: Present complex RWE data and analyses in a clear and comprehensible manner to a variety of audiences, including non-experts. Prepare detailed reports and publications.
  • Innovation and Development: Stay abreast of the latest developments in genomics and bioinformatics. Propose and develop new methods and technologies for advanced data analysis.
  • Stakeholder Engagement: Engage with key stakeholders to define project goals, report progress, and discuss findings. Act as a liaison between the technical team and non-technical stakeholders.

Desired qualifications:

  • Ph.D. in Bioinformatics, Computational Biology, Genetics, or a related field
  • At least 10 years of relevant experience 
  • Proven expertise in bioinformatics, particularly in genomics data analysis. Demonstrated expertise in cancer genomics, including genomic alterations, molecular pathways, and cancer biology
  • Expert knowledge of bioinformatics tools including mapping, variant calling, CNV analysis and statistical methods
  • Strong experience in managing, querying, and analyzing massive-scale genomic and healthcare datasets using SQL, Python, or R, and data visualization tools
  • Additional expertise in germline genetics, particularly in relation to organ health and prenatal health, is a significant plus.
  • AI/ML Expertise: Proficiency in predictive analytics, advanced machine learning, deep learning, and statistical modeling. Strong hands-on experience with AI frameworks such as PyTorch, TensorFlow, Keras, etc.
  • Understanding of real-world clinical data, such as electronic health records, claims data, patient registries, health surveys. Familiarity with common data models (e.g., OMOP) and experience utilizing NLP/LLM to parse unstructured clinical data. 
  • Ability to interpret clinical endpoints, understand patient cohorts, and collaborate with clinical stakeholders
  • Knowledge of translational medicine and/or early discovery in the biotech or pharmaceutical industry is a plus
  • Excellent project management skills with a proven track record in leading successful projects
  • Experience managing one or more direct/indirect reports.
  • Exceptional communication skills, demonstrating the ability to translate complex models and RWD findings to both technical and clinical/non-technical stakeholders. Ability to produce high quality written documentation for varying audiences
  • Proven experience collaborating with cross-functional teams including clinicians, scientists, biostatisticians, regulatory and stakeholders.

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