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Bioinformatics Analyst Jobs in Berkeley, CA (NOW HIRING)

We have developed industry-leading software tools for analysis and reporting of biological data. We ... As a Bioinformatics Engineer in the Content Development team, you will play a critical role in ...

We have developed industry-leading software tools for analysis and reporting of biological data. We ... As a Bioinformatics Engineer in the Content Development team, you will play a critical role in ...

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Bioinformatics Analyst information

See Berkeley, CA salary details

$8

$56

$100

How much do bioinformatics analyst jobs pay per hour?

As of Aug 30, 2026, the average hourly pay for bioinformatics analyst in Berkeley, CA is $56.11, according to ZipRecruiter salary data. Most workers in this role earn between $44.13 and $60.05 per hour, depending on experience, location, and employer.

What does a bioinformatics analyst do?

A bioinformatics analyst works with large databases of omics data, such as genomics studies like the Human Genome Project. Your responsibilities in this career include research on the pathology of diseases and the development of experiments and algorithms to find cures. Your duties also involve ensuring compliance with all federal regulations and protocols. You may document your findings and present them at conferences as well. A career as a bioinformatics analyst requires advanced writing skills for writing scientific literature.

What does a bioinformatics analyst do?

A Bioinformatics Analyst uses computational and statistical methods to analyze biological data, such as DNA, RNA, or protein sequences. They interpret large datasets generated by experiments, develop algorithms, and create visualizations to help researchers understand complex biological processes. Their work supports scientific discoveries in fields like genomics, medicine, and agriculture, often collaborating with biologists, computer scientists, and other researchers.

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

To thrive as a Bioinformatics Analyst, you need a strong background in biology, statistics, and computer science, typically supported by a relevant bachelor's or master's degree. Familiarity with bioinformatics tools like BLAST, Python/R programming, and experience with databases such as GenBank or Ensembl are commonly required. Analytical thinking, problem-solving, and effective communication are crucial soft skills for interpreting data and collaborating with multidisciplinary teams. These skills enable analysts to extract meaningful insights from complex biological data, driving research and innovation in genomics and healthcare.

What are some common challenges faced by bioinformatics analysts when working with large genomic datasets?

One of the main challenges Bioinformatics Analysts encounter is managing and processing extremely large and complex genomic datasets, which often require advanced computational resources and efficient data management strategies. Ensuring data quality and accuracy while integrating information from various sources can also be demanding. Analysts frequently collaborate with biologists, clinicians, and IT professionals to interpret results and optimize workflows, which requires strong communication and interdisciplinary skills.

What is the difference between Bioinformatics Analyst vs Bioinformatics Technician?

AspectBioinformatics AnalystBioinformatics Technician
Required CredentialsBachelor's or Master's in Bioinformatics, Biology, or related field; experience with data analysis toolsAssociate's or Bachelor's; focus on data processing and laboratory support
Work EnvironmentResearch labs, biotech companies, healthcare institutionsLaboratories, research facilities, academic settings
Employer & Industry UsageUsed in research, healthcare, biotech industries for data interpretationUsed for data collection, sample processing, and technical support roles

The main difference is that Bioinformatics Analysts focus on analyzing complex biological data and interpreting results, often requiring advanced degrees. Bioinformatics Technicians typically handle data collection, sample preparation, and technical tasks, supporting analysts and researchers. Both roles are essential in the biotech and healthcare industries, but they differ in responsibilities and required qualifications.

What are popular job titles related to Bioinformatics Analyst jobs in Berkeley, CA?

For Bioinformatics Analyst jobs in Berkeley, CA, the most frequently searched job titles are:

What cities near Berkeley, CA are hiring for Bioinformatics Analyst jobs?

Cities near Berkeley, CA with the most Bioinformatics Analyst job openings:

Infographic showing various Bioinformatics Analyst job openings in Berkeley, CA as of August 2026, with employment types broken down into 83% Full Time, 12% Part Time, and 5% Contract. Highlights an 79% Physical, 8% Hybrid, and 13% Remote job distribution, with an average salary of $116,699 per year, or $56.1 per hour.

BIOINFORMATICS PROGR 3

San Francisco, CA


University of California San Francisco
Colleges, Universities, and Professional Schools • 10K+ employees

7.8

Company rating: 7.8 out of 10

Based on 13 frontline employees who took The Breakroom Quiz

234th of 627 rated colleges and universities

People enjoy working here

Good employer

Respectful managers


Full-time

Posted 5 days ago


Job description

Job Function Summary:

Involves developing and utilizing computational tools and systems to analyze and interpret biological or other research data. Utilizes and develops algorithms, computational techniques, and statistical methodologies. Helps in the design of new experiments. Implements end-user needs in database searching and integration. Assists with maintaining the computational infrastructure, local databases, and tracks the flow of samples and information for large-scale studies. Develops analysis tools for use by lab personnel and for public dissemination.  

Custom Scope:

Uses skills as a seasoned, experienced bioinformatics programming professional with a broad understanding of computational algorithms and systems; identifies and resolves a wide range of issues / software bugs. Demonstrates good judgment in selecting methods and techniques for obtaining solutions. Operates independently. Demonstrates proficiency with modern AI coding frameworks, for example, Claude, Codex, Cursor, etc., as well as traditional SQL and Python coding.  Demonstrates proficiency with modern machine learning toolkits and approaches for classification tasks using large scale datasets, including transcriptomics, and proteomics, demonstrated proficiency using, evaluating, and optimizing protein modeling and folding approaches, including Rosetta, AlphaFold3, and others. Demonstrated track record of scholarly excellence. 

Required:

  • Bachelor's degree in biological science, computational / programming, or related area and / or equivalent experience / training.
  • Minimum 3 years of related experience
  • Thorough knowledge of bioinformatics methods, nextgen sequencing processing, applications programming, web development and data structures.
  • Thorough knowledge of Python bioinformatics programming design, modification and implementation.
  • Thoroughly proficient with design, implementation, and management of SQL relational databases, web interfaces, and linux based operating systems. 
  • Thoroughly proficient with modern LLM application development tools. 
  • Thorough knowledge of protein folding algorithms, including AlphaFold3and  deploying packages on different hardware platforms, such as local systems and/or HPCs 
  • Thorough knowledge of machine learning techniques for building predictive classifiers, including logistic regression methods, random forest, neural networks, on multi-modal data, including mass spectrometry spectra, single cell sequencing, B cell repertoire sequencing, phage immunoprecipitation, yeast display, and similar. 
  • Proficient knowledge of basic cell biology, genomics, and basic immunology. 
  • Self-motivated, work independently or as part of a team, able to learn quickly, meet deadlines, and demonstrate problem-solving skills.
  • Thorough knowledge of genomic alignment algorithms, including Diamond, Minimap2, STAR.
  • Conceptual familiarity with PhIPseq, yeast display, and antigen screening methods. 
     

Preferred:

  • Ability to interface with management on a regular basis.

  • Doctoral degree in biological science, computational / programming, or related area and / or equivalent experience / training. Ideally in machine learning applied to biomedicine areas.

Problem Solving:

  Given a large biologic dataset derived from cases and controls, construct and train a machine learning classifier, test performance on held out data, and derive key features driving classification performance

  Construct new query interfaces using APIs to commercial AI systems for analysis of large scale datasets, including agentic systems for automated data analysis and hypothesis generation

 Create a new client/server database for antigen display data, with data analysis and visualization tools.

Analyze B or T Cell receptor repertoire sequencing data for clonal expansion

Model antigen / antibody interactions using AlphaFold3

Less frequent and more complex problems solved by the employee:

 Troubleshooting SQL database issues, designing new web server frameworks.

Build new databases as needed.

Building bespoke visualization tools for new datasets  

Problems/situations that are referred to this employee's supervisor:

  Scientific strategic direction questions

  Collaboration strategy and agreements

  Acquisition of new patient cohorts for data production

of time

Essential Function (Yes/No)

  

Key Responsibilities

(To be completed by Supervisor)

25

YESApplies complex bioinformatics concepts to implementexisting software tools and systems, both command line and web based for large scale analysis of in-house generated genomic, proteomic, and immunology data. . 

20

YESDevelops new analysis tools, focusing on  automated analysis, data aggregation, hypothesis generation. May include agentic systems.

15

YESDevelops, implements, and maintains web interfaces and SQL databases to share and display bioinformatics analysis and content with collaborators and other users.

10

YESPerforms complex data modeling, performance and integration testing, and builds user interfaces for a variety of internal and external constituents.

20

YESPerforms complex data analysis, including developing predictive machine learning classifiers, for in-house generated data. 

10

YESAssists with manuscript preparation, figure making, public data deposition

100%

 (To update total %, enter the amount of time in whole numbers (without the % symbol - e.g., 15, 20) then highlight the total sum (e.g., 1%) at the bottom of the column and press F9. The total sum should add up to 100%.)


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