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Genomic Jobs (NOW HIRING)

Position Information Position Title Research Assistant Professor-Genomic Sequencing Data Analysis Job Summary We are seeking a highly skilled and motivated Research Assistant Professor with expertise ...

Reviews results of cytogenetics and molecular genetic/genomic testing as appropriate by board certification. Issues and signs written interpretative test reports and oversees clinical/scientific ...

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Genomic information

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$100K

$368.2K

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How much do genomic jobs pay per year?

As of Jul 14, 2026, the average yearly pay for genomic in the United States is $368,164.00, according to ZipRecruiter salary data. Most workers in this role earn between $374,000.00 and $400,000.00 per year, depending on experience, location, and employer.

What are some careers in genomics?

Careers in genomics include roles such as genomic researcher, bioinformatician, laboratory technician, genetic counselor, and clinical geneticist. These positions often require skills in molecular biology, data analysis, and familiarity with sequencing technologies and bioinformatics tools.

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

To thrive as a Genomic Scientist, you need a solid background in genetics, molecular biology, and bioinformatics, typically supported by an advanced degree (MSc or PhD) in genomics or a related field. Proficiency with genomic sequencing technologies, data analysis tools (such as Python, R, or specialized bioinformatics software), and familiarity with databases like NCBI or Ensembl are crucial. Strong analytical thinking, attention to detail, and effective communication skills help interpret complex data and collaborate with multidisciplinary teams. These competencies are vital for advancing research, ensuring accurate data interpretation, and driving innovation in genomic medicine and biotechnology.

What is the highest paying job in genetics?

The highest paying jobs in genetics are often senior roles such as genetic counselors, research directors, or biotech executives, with salaries exceeding $150,000 annually. Positions requiring advanced degrees, leadership skills, and experience in genomics research or biotech management tend to offer the highest compensation.

Does genomics pay well?

Genomic scientists and professionals typically earn competitive salaries that vary based on experience, education, and location. Entry-level roles may start lower, but experienced specialists with advanced skills in bioinformatics or laboratory techniques can earn higher wages, especially in research or industry settings.

What are some common challenges faced by professionals working in genomics, and how can they be addressed?

Professionals in genomics often face challenges such as managing large and complex datasets, staying up-to-date with rapidly evolving technologies, and ensuring data privacy and ethical compliance. Effective collaboration with bioinformaticians, IT specialists, and clinical teams is essential to address these issues. Regular training, participating in interdisciplinary meetings, and adopting robust data management practices can help overcome these challenges and contribute to a successful career in genomics.

What is the difference between Genomic vs Bioinformatics Specialist?

AspectGenomicBioinformatics Specialist
Required CredentialsDegree in Genetics, Genomics, or related fields; certifications in genetic analysisDegree in Bioinformatics, Computer Science, or related fields; certifications in data analysis
Work EnvironmentLaboratories, research institutions, biotech companiesResearch labs, biotech firms, academic institutions, often working with large datasets
Employer & Industry UsagePrimarily in genetics and genomics research, clinical labsAcross biotech, healthcare, and research sectors focusing on data analysis

Genomic professionals focus on analyzing genetic data and understanding genetic variations, often working in labs. Bioinformatics Specialists develop computational tools and analyze large datasets, including genomic data. While both roles require a strong background in genetics and data analysis, Genomic roles are more lab-oriented, whereas Bioinformatics Specialists are more software and data-focused.

What are genomics professionals and what do they do?

Genomics professionals are scientists and specialists who study the structure, function, evolution, and mapping of genomes, which are the complete set of DNA within an organism. They analyze genetic information to understand how genes influence health, disease, and traits. Their work often involves using advanced technologies such as DNA sequencing and bioinformatics tools to conduct research, interpret genetic data, and contribute to medical, agricultural, or forensic applications. Genomics professionals may work in research institutions, healthcare, biotechnology companies, or academic settings.

Is genomics a good career?

Genomics is a growing field that involves studying an organism's complete set of DNA. Careers in genomics often require strong backgrounds in biology, genetics, and data analysis, with opportunities in research, healthcare, and biotechnology sectors. The field offers high demand for skilled professionals and the use of advanced tools like sequencing technologies and bioinformatics software.
More about Genomic jobs
What cities are hiring for Genomic jobs? Cities with the most Genomic job openings:
What are the most commonly searched types of Genomic jobs? The most popular types of Genomic jobs are:
What states have the most Genomic jobs? States with the most job openings for Genomic jobs include:
Infographic showing various Genomic job openings in the United States as of July 2026, with employment types broken down into 88% Full Time, 11% Part Time, and 1% Contract. Highlights an 80% Physical, 1% Hybrid, and 19% Remote job distribution, with an average salary of $368,164 per year, or $177 per hour.
Machine Learning Researcher, Genomic AI

Machine Learning Researcher, Genomic AI

Bayer

Creve Coeur, MO

Other

Medical, Dental, Vision, Retirement, PTO

Posted 4 days ago


Bayer rating

8.1

Company rating: 8.1 out of 10

Based on 68 frontline employees who took The Breakroom Quiz

32nd of 74 rated pharmaceutical


Job description

At Bayer we're visionaries, driven to solve the world's toughest challenges and striving for a world where 'Health for all Hunger for none' is no longer a dream, but a real possibility. We're doing it with energy, curiosity and sheer dedication, always learning from unique perspectives of those around us, expanding our thinking, growing our capabilities and redefining 'impossible'. There are so many reasons to join us.

If you're hungry to build a varied and meaningful career in a community of brilliant and diverse minds to make a real difference, there's only one choice. Machine Learning Researcher, Genomic AI We are seeking a Machine Learning Researcher with expertise in machine learning for biological systems, with a particular focus on genomic and multi-omic data modeling. This role is centered on building and deploying state-of-the-art AI models- including large-scale genomic language models and deep representation learning architectures - that extract actionable biological insight from complex molecular datasets.

You will develop models that learn the grammar of genomes, predict functional consequences of genetic variation, and connect molecular signatures to whole-organism phenotypes across diverse crop species. Your work will directly enable transformative applications in genomic selection and genome editing target identification, translating sequence-level intelligence into breeding and discovery decisions at global scale. This position is being hired at the entry level.

Depending on the candidate's depth of experience and demonstrated research impact, the role may be filled at the Senior Machine Learning Researcher level. YOUR TASKS AND RESPONSIBILITIES The primary responsibilities of this role are: Genomic & Omic Model Development: Design, train, and evaluate deep learning models (including large language models, transformers, and representation learning architectures) on diverse omic datasets - whole-genome sequences, gene expression profiles (RNA-seq), epigenomic marks, k-mer spectra, skim-seq, pangenome graphs, and multi-omic integrations. Genomic Language Models: Develop and fine-tune foundation models for DNA/RNA sequences that capture long-range dependencies, regulatory grammar, and evolutionary conservation to predict variant effects, gene function, and trait associations in crop genomes.

Genomic Selection & Editing Enablement: Build predictive models that connect genotype to phenotype across environments, identify high-value editing targets, and rank candidate genetic interventions with biological interpretability and statistical rigor. Functional Data Integration: Integrate heterogeneous biological data types-including high-resolution genome assemblies, structural variants, gene regulatory networks, protein structure predictions, and phenomic measurements-into unified predictive frameworks. Interdisciplinary Collaboration: Work closely with molecular biologists, geneticists, breeders, bioinformaticians, and computational scientists to ground models in biological reality, design informative training data strategies, and validate predictions experimentally.

Scalable Deployment: Partner with engineering and IT teams to operationalize models within genomic selection pipelines, editing nomination workflows, and decision-support platforms used by breeding programs globally. Research Contribution: Advance the state of the art through publications, internal seminars, and engagement with the broader computational biology and AI research community. Documentation & Communication: Communicate complex modeling results to diverse audiences, prepare technical reports, and build organizational confidence in AI-driven biological discovery.

WHO YOU ARE Bayer seeks an incumbent who possesses the following: Required: PhD in one of the following or closely related fields: Computational Biology / Bioinformatics Machine Learning / Deep Learning Genomics / Statistical Genetics Computer Science (with focus on biological or sequential data) Biostatistics / Quantitative Genetics Systems Biology Or another related quantitative discipline with demonstrated application to biological data Demonstrated research experience building and training deep learning models on biological sequence data or high-dimensional omic datasets. Proficiency in modern deep learning frameworks (PyTorch, JAX, or TensorFlow) and familiarity with large-scale model training (distributed training, GPU clusters). Working knowledge of molecular biology fundamentals sufficient to interpret model outputs in biological context (e.g., gene regulation, variant consequence, population genetics)

Strong communication skills and ability to collaborate effectively across disciplines. Preferred: Hands-on experience developing or fine-tuning genomic language models or biological foundation models (e.g., GPN, PlantCaduceus, Nucleotide Transformer, Evo, Enformer, AlphaGenome or similar large-scale sequence architectures for genomic prediction and functional track prediction). Experience with transformer architectures, long-context sequence modeling, or attention mechanisms applied to biological sequences

Familiarity with multi-omic data integration methods (e.g., multi-modal autoencoders, contrastive learning across modalities, graph neural networks on biological networks). Background in quantitative genetics or genomic prediction (e.g., GBLUP, Bayesian alphabet models, marker-effect estimation) and understanding of breeding program workflows. Experience with functional genomics data: ATAC-seq, ChIP-seq, Hi-C, single-cell transcriptomics, or CRISPR screen data

Knowledge of pangenomics, structural variant calling, or comparative genomics across crop species. Experience with self-supervised, semi-supervised, or transfer learning strategies for data-efficient modeling in biology. Familiarity with interpretability/explainability methods (attention visualization, in-silico mutagenesis, feature attribution) to derive biological hypotheses from model internals.

Exposure to classical ML approaches (gradient-boosted methods, kernel methods, Gaussian processes) as complementary or baseline tools. Experience with model deployment in production (MLOps pipelines, containerization, API development, cloud/HPC infrastructure). Track record of interdisciplinary collaboration with experimental biologists, resulting in validated biological predictions.

For Senior-Level Consideration: Candidates with 5+ years of post-PhD experience (or equivalent depth of impact), a strong publication record, demonstrated ability to independently drive complex research programs, and experience mentoring researchers or leading technical initiatives may be considered for the Senior Machine Learning Researcher level. Senior-level hires are expected to set research agenda, influence cross-functional strategy, and serve as thought leaders within the AI and data science community. Employees can expect to be paid a salary of approximately $110k-150k.

Additional compensation may include a bonus or incentive program (if relevant). Additional benefits include health care, vision, dental, retirement, PTO, sick leave, etc.. This salary (or salary range) is merely an estimate and may vary based on an applicant's location, market data/ranges, an applicant's skills and prior relevant experience, certain degrees and certifications, and other relevant factors

This posting will be available for application until at least 7/23/26. YOUR APPLICATION Bayer offers a wide variety of competitive compensation and benefits programs. If you meet the requirements of this unique opportunity, and want to impact our mission Health for all, Hunger for none, we encourage you to apply now.

Be part of something bigger. Be you. Be Bayer.

To all recruitment agencies: Bayer does not accept unsolicited third party resumes. Bayer is an Equal Opportunity Employer/Disabled/Veterans Bayer is committed to providing access and reasonable accommodations in its application process for individuals with disabilities and encourages applicants with disabilities to request any needed accommodation(s) using the contact information below. Equal Opportunity Employer Statement: Notice for U.S

Visitors: All information on this site is subject to compliance with local rule and regulations as they may vary from time to time and across different geographies, including, without limitation, U.S. Executive Orders. Bayer is an E-Verify Employer

Location: United States : Residence Based : Residence Based || United States : Missouri : Creve Coeur Division: Crop Science Reference Code: 872400 Contact Us Email: hrop_usa@bayer.com


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About Bayer

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Bayer is a global enterprise with core competencies in the life science fields of healthcare and nutrition. We design our products and services to help people and planet thrive by supporting efforts to address the unprecedented global challenges presented by a growing and aging global population. At Bayer, we’re committed to drive sustainable development and generate a positive impact with our businesses. Through bold ideas and unprecedented insights, we’re pioneering new possibilities that advance life for all of us. That means reimagining how we care for ourselves and one another by empowering everyday health, improving approaches to patient care, and finding better ways to nourish our communities around the world.

Industry

Agriculture

Company size

10,000+ Employees

Headquarters location

Whippany, NJ, US