Full-Time

Technical Writer

Updated on 8/8/2026

Deadline 7/22/27
ATCC

ATCC

501-1,000 employees

Largest biological models repository and solutions

Compensation Overview

$68k - $75k/yr

+ Merit increases + Corporate bonus program

Manassas, VA, USA

In Person

On-site position in Manassas, Virginia.

Bachelor's, Master's

Category
Content & Writing (1)
Required Skills
Microsoft Office
Data Science
Microbiology

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Requirements
  • A Bachelor's degree and 2 years of experience, or equivalent experience through a Master's degree and 0 years of experience or a high school diploma and 6 years of experience.
  • Technical writing and editing experience.
  • Experience reviewing scientific literature and technical data to support documentation accuracy.
  • Strong attention to detail and the ability to maintain documentation quality, consistency, and compliance.
  • Proficiency with Microsoft Office applications and general computer skills for website maintenance and data mining.
  • Good verbal communication skills and the ability to integrate information from multiple sources into a uniform style and language.
Responsibilities
  • Develop, write, edit, and review reports, Standard Operating Procedures, product information sheets, proposals, and related technical documentation.
  • Create instructional, descriptive, reference, and informational documentation, including manuals, work instructions, protocols, and supporting materials.
  • Review scientific literature and data to authenticate documented manufacturing specifications and support technical content accuracy.
  • Integrate information from multiple sources into a consistent style and language while ensuring documentation meets editorial specifications, quality standards, format requirements, and ISO certification standards.
  • Edit existing documentation and collaborate with initiators to rewrite, clarify, or reconstruct procedures, specifications, and forms as directed.
  • Support website maintenance activities, add information to web detail pages, assist with document accessibility efforts, and adhere to project scope and timelines.
Desired Qualifications
  • A biology, life sciences, or scientific background supporting technical and scientific documentation.
  • A background in molecular biology, microbiology, or bacteriology.

ATCC provides biological research resources, offering the largest and most diverse collection of biological models and related solutions to scientists. Its products include credible standards, biological models, and custom solutions that researchers use to run experiments and validate results. The company operates as a trusted partner that supports scientific collaboration and aims to raise credibility in science by supplying reliable materials and services that enable scientific progress. Its goal is to empower the global scientific community with dependable references and tailored resources to advance discoveries and future breakthroughs.

Company Size

501-1,000

Company Stage

Grant

Total Funding

$13.5M

Headquarters

Manassas, Virginia

Founded

1925

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Simplify Jobs

Simplify's Take

What believers are saying

  • NIAID’s seven-year IDIQ reaches $136.6 million, starting March 2026.
  • ATCC’s Manassas biomanufacturing facility created 75 jobs and expands outbreak-response capacity in 2026.
  • ATCC secured USDA, CDC, and NIAID awards during 2026, widening federal demand.

What critics are saying

  • ATCC faces DSMZ, Coriell, Thermo Fisher, and Lonza competition across cell-line and reagent markets.
  • Government awards dominate ATCC’s growth; NIH budget cuts hit revenue fast.
  • A contamination, misauthentication, or quality failure destroys ATCC’s credibility and repository business.

What makes ATCC unique

  • ATCC controls the largest authenticated biological repository, pairing materials with standards and provenance.
  • ATCC and Broad Institute added 13 CRISPR-engineered NSCLC resistance models on April 20, 2026.
  • ATCC’s NIST, NIAID, USDA, and CDC deals monetize trust in regulated reference materials.

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Benefits

Health Insurance

Life Insurance

Disability Insurance

Paid Holidays

Paid Vacation

Remote Work Options

Phone/Internet Stipend

Mental Health Support

Parental Leave

Pet Insurance

Performance Bonus

Growth & Insights and Company News

Headcount

6 month growth

7%

1 year growth

7%

2 year growth

7%
ATCC
May 14th, 2026
ATCC wins prestigious National Institutes of Health Replication Prize for advancing reproducibility in virus research.

ATCC wins prestigious National Institutes of Health Replication Prize for advancing reproducibility in virus research. News Release Global biological resource center recognized for groundbreaking work that makes high-stakes biomedical research more trustworthy and repeatable. May 14, 2026 ATCC is a winner of the National Institutes of Health (NIH) Common Fund Replication Prize, a prestigious national competition designed to advance scientific research by identifying strategies to make biomedical research more replicable. ATCC is recognized as one of 35 winners, and one of 15 selected winners for the Replication Exemplars Track. ATCC was recognized for its innovative approach to producing Well-characterized Challenge Material (WCCM) - standardized, rigorously tested virus samples that enable researchers across institutions to generate comparable, reproducible results for high-containment virus research. The NIH Replication Prize, launched with NASA's Tournament Lab, addresses critical challenges in biomedical research where many peer-reviewed studies cannot be reliably replicated due to incomplete documentation and variability in materials. The program aims to shift scientific culture by embedding replication as a standard practice rather than an afterthought. ATCC won for developing a comprehensive strategy that produces viral challenge materials with consistent genomic and functional characteristics across multiple production runs. The approach ensures independent lots meet quality standards and can be used interchangeably without additional manipulation. This capability is critical for high-containment virus studies including SARS-CoV-2, MERS-CoV, and Eastern, Western, and Venezuelan Equine Encephalitis viruses. Reduced variability in these materials strengthens the reliability of evaluating vaccines, therapeutics, and diagnostics. "This recognition validates ATCC's commitment to reproducible science and highlights the critical importance of standardized, high-quality biological materials in advancing research," said Rebecca Bradford, senior vice president of Federal Solutions at ATCC. "By eliminating variability in viral challenge materials, we're building a foundation for more reliable research across institutions worldwide." ATCC's winning replication strategy involved three critical phases: * Controlled optimization studies to identify optimal cell line selection (HeLa, Caco-2, U-87 MG, and SW-13), seeding density, multiplicity of infection, and harvest timing * Small-scale engineering runs to confirm reproducibility * Large-scale production exceeding one liter per batch Each run underwent rigorous quality control including whole-genome sequencing, sterility and mycoplasma screening, and functional validation through TCID[50] and plaque assays. The ATCC team produced over 30 production runs generating more than 1,000 vials per run while maintaining genomic stability with only low-frequency variants detected through integrated next-generation sequencing. The out-of-the-vial model eliminated additional passages by researchers, reducing experimental variability and decreasing quality control turnaround time by 30%. The impact extends beyond individual projects to strengthen global pandemic preparedness. Through management of BEI Resources, ATCC enables worldwide distribution of standardized materials for eligible researchers. The scalable platform allows rapid production of challenge material for emerging pathogens, ensuring validated viral stocks can be deployed quickly during public health emergencies. Proven during the COVID-19 response, this capability positions the global scientific community for faster, more coordinated responses to future outbreaks. This recognition reinforces ATCC's leadership in advancing reproducible science and its ongoing commitment to supporting the global research community with trusted biological resources.

Yahoo Finance
Apr 20th, 2026
ATCC and Broad Institute engineer 13 NSCLC cancer models to decode resistance to targeted therapy

ATCC and the Broad Institute have developed CRISPR-engineered cancer cell lines to study drug resistance in non-small cell lung cancer. The initial collaboration produced 13 isogenic NSCLC cell lines, each containing a specific resistance mechanism to osimertinib, an EGFR inhibitor used to treat EGFR-mutant lung cancers. The models address a critical oncology challenge: whilst targeted therapies improve survival, resistance inevitably develops. Developing resistant models from patient tumours can take years due to sample scarcity, but engineered models allow systematic study of multiple resistance pathways more quickly. The engineered models will be integrated into the Cancer Dependency Map to help build a response and resistance map of therapeutic vulnerabilities. They will be made available through ATCC and the DepMap portal to support cancer research, functional genomics and AI-driven drug discovery globally.

GlobeNewswire
Apr 20th, 2026
ATCC and Broad Institute engineer new cancer models to decode resistance to targeted therapy.

ATCC and Broad Institute engineer new cancer models to decode resistance to targeted therapy. New models can help researchers accelerate discovery of resistance pathways. 20 avr. 2026 08h30 HE | Source: ATCC Key Takeaways * Creating new models of drug-resistant cancer: ATCC and the Broad Institute collaborated to develop CRISPR-engineered drug-resistant isogenic cell lines that replicate clinically observed resistance mechanisms to targeted therapies. The initial effort resulted in 13 isogenic non-small cell lung cancer (NSCLC) cell lines, each engineered to harbor a defined resistance mechanism to the EGFR inhibitor osimertinib. * Expanding the Cancer Dependency Map: The models will be integrated into the Cancer Dependency Map (DepMap) to help build a response and resistance map (ResMap) of therapeutic vulnerabilities in cancer. * Advancing precision oncology: The models allow researchers to directly compare drug-sensitive and resistant cancer cells to uncover new therapeutic targets and drug combination strategies. * Providing an open resource for global researchers: The engineered models and associated genomic datasets will be made available through ATCC and the DepMap portal to support cancer research, functional genomics, and AI-driven drug discovery. MANASSAS, Va., and CAMBRIDGE, Mass., April 20, 2026 (GLOBE NEWSWIRE) - ATCC and the Broad Institute of MIT and Harvard today announced new research describing the development of engineered isogenic cancer models designed to replicate resistance to targeted therapies, beginning with osimertinib, the latest-generation epidermal growth factor receptor (EGFR) inhibitor used to treat non-small cell lung cancer (NSCLC) with EGFR mutations. The work addresses a critical challenge in oncology - treatment resistance that emerges over time. EGFR-mutant lung cancer was among the first subsets of a major epithelial cancer where directly targeting an oncogene was associated with marked clinical benefit. While targeted therapies have significantly improved overall survival, resistance inevitably develops. Understanding resistance mechanisms is essential for identifying combination therapies capable of producing durable responses and potentially disease-free remissions. Developing resistant models directly from patient tumors, however, can take years due to the scarcity of samples. In contrast, engineering resistance mechanisms in controlled laboratory models allows researchers to systematically study multiple escape pathways much faster. To accelerate discovery, scientists from ATCC and the Broad Institute collaborated to engineer a panel of drug-resistant NSCLC models using CRISPR gene editing and gene overexpression techniques. These models systematically model the resistance mechanisms that arise in patients treated with osimertinib. "With this powerful new set of tools, drug-sensitive and drug-resistant cancer cells can be studied side by side to understand therapeutic resistance and the underlying drivers," said Ruth Cheng, PhD, CEO of ATCC. "By creating and providing these cancer models along with a rich data-set to the global research community, our hope is to reveal hidden targets and combination strategies that turn today's treatment failures into tomorrow's breakthrough. We look forward to extending this approach to additional cancer types." Engineering drug-resistant lung cancer models Led by William R. Sellers, MD, Director of the Cancer Program at the Broad Institute, Fang Tian, PhD, Director of Biological Content at ATCC, and Francisca Vazquez, PhD, Director of DepMap at the Broad Institute, the ATCC-Broad team identified representative classes of resistance mechanisms to osimertinib. They then selected three disease-representative, osimertinib sensitive NSCLC cell lines as the foundation for developing the new isogenic drug- resistant cell models. ATCC engineered the selected authenticated cell lines with resistance mechanisms using CRISPR-based methods. The six resistance mechanisms included: * PIK3CA E545K mutation * KRAS G12D mutation * BRAF V600E mutation * EGFR C797S mutation * CCDC6-RET fusion * TPM3 - NTRK1 fusion In addition, scientists at the Broad Institute are generating additional resistant cell lines driven by gene amplification mechanisms using overexpression methods. These engineered isogenic model systems allow researchers to compare genetically matched cancer cells that differ only by a specific resistance alteration - providing a powerful framework to study how tumors evolve under targeted therapy. Building a response and resistance map for cancer The models will be integrated into the Cancer Dependency Map (DepMap), a global effort to identify genetic vulnerabilities across hundreds of cancer cell models. The collaboration also contributes to the development of a Response and Resistance Map (ResMap) - an emerging framework designed to systematically characterize how cancers respond to therapy and how resistance evolves. "Drug resistance remains one of the most significant barriers to durable cancer treatment," said Kirsty Wienand, PhD, Sr Research Scientist in DepMap at the Broad Institute. "Systematically engineering resistance mechanisms in well-characterized cell models allows us to study how tumors adapt to targeted therapy. Integrating these models into DepMap will help researchers worldwide identify new vulnerabilities and potential therapeutic combinations." Enabling and accelerating discovery across the global research community The collaboration ensures that both the biological models and the associated data will be widely accessible to the scientific community. * Data will be integrated into the DepMap portal, with links to the corresponding ATCC cell line identifiers. * The engineered cell lines will be distributed globally through ATCC following authentication and quality control. Systematically engineering clinically relevant resistance mechanisms in lung cancer models, the collaboration establishes a scalable framework for studying how tumors escape targeted therapies. The resulting models and datasets will help researchers identify new vulnerabilities and therapeutic strategies to overcome drug resistance and improve outcomes for patients with cancer. By combining advanced cell engineering, functional genomics, and computational biology, the collaboration provides a powerful resource for studying drug resistance, cancer vulnerabilities, and precision oncology strategies. Research to be presented at industry event ATCC and Broad Institute will present the research findings at the American Association for Cancer Research(R)(AACR) Annual Meeting 2026, April 17-22 in San Diego. Title: Engineering isogenic models harboring resistance mechanisms to the latest-generation EGFR inhibitor in non-small cell lung cancer Session Category: Experimental and Molecular Therapeutics Session Title: Drug Resistance 2: Tyrosine Kinase Inhibitors Date: April 22, 2026 Time: 9:00 AM - 12:00 PM Location: Poster Section 11 Poster Board: 8 Poster Number: 7029 About ATCC ATCC is a premier global biological materials and information resource and standards organization and the leading developer and supplier of authenticated cell lines, microorganisms, and associated data for academia, industry, and government. With a history of scientific contributions spanning more than a century, ATCC offers an unmatched combination of being the world's largest and most diverse collection of biological reference materials and data, and is a mission-driven, trusted partner that supports and encourages scientific collaboration. ATCC products, services, partnerships, and people provide the global scientific community with credible, advanced model systems to support complex research and innovations in basic science, drug discovery, translational medicine, and public health. ATCC is a 501(c)(3) nonprofit organization headquartered in Manassas, Virginia, with research and technology centers of excellence in Gaithersburg and Germantown, Maryland. Media Contact: Samantha Paro Senior Manager, Corporate Communications & Public Affairs ATCC [email protected] About the Broad Institute Broad Institute is an independent, non-profit research organization whose mission is to understand the roots of disease and close the gap between new biological insights and impact for patients. Founded in 2004 by the visionary Los Angeles philanthropists Eli and Edythe Broad, the Broad Institute exists at the intersection of scientific disciplines, convening scientists and other experts from genomics, cell biology, chemistry, engineering, neuroscience, therapeutics, artificial intelligence/machine learning, computational biology, and public health. The Broad Institute engages thousands of scientists from MIT, Harvard, Harvard's primary teaching hospitals, other academic institutions, and leading corporate partners in the pharmaceutical and biotechnology industries, all of whom share the goal of translating research findings into safe and effective therapeutic interventions for all common and rare diseases. [*Not affiliated with or endorsed by AACR.]

PwC Delaware
Nov 25th, 2025
Building a Bioliterate Workforce in Prince William County

Building a bioliterate workforce in Prince William County. The Prince William County Department of Economic Development & Tourism (PWCDEDT) participated in the National Security Commission on Emerging Biotechnology (NSCEB) roadshow event Empowering the Future of Biotechnology through Trusted Science at American Type Culture Collection (ATCC)'s corporate headquarters in Innovation Park, Manassas on November 21. The exclusive gathering included an intersection of key leaders in academia, industry, and government for the NSCEB's Biotech Across America Roadshow program, which comes on the heels of the comprehensive 200-page report presented to the U.S. Senate Armed Services committee in April 2025. This stop featured global leadership in the bioeconomy, including the Biotechnology Innovation Organization (BIO), Virginia Innovation Partnership Corporation (VIPC), and Virginia Bio. Major biomanufacturing startups from across the Capital BioHealth Region were featured on panels, including the Endeavor234 incubator graduate, Capra Biosciences, who is working with ATCC on projects related to the Defense Advanced Research Projects Agency's (DARPA) Switch program. "We grow and protect the essential resources that can harness the immense power of biology - impacting everything from cancer and infectious diseases to agriculture. Every milestone related to scientific biological discovery is recorded at ATCC," said ATCC president and CEO Ruth Cheng, PhD. "The bioeconomy is a shared mission for resiliency which starts with the talent pipeline." Located in Manassas for nearly 30 years, the private non-profit is an anchor life science and biomanufacturing company for the county's burgeoning Innovation District, which is powered by PWCDEDT, the City of Manassas, and George Mason University (GMU). In addition to successful workforce programs such as Virgina Bio's STEM2VA and VIPC's Lab-to-Launch, GMU just launched the Northern Virginia International Soft-Landing Accelerator (NISA) program designed to help start-ups from around the globe find guidance, connections, and lab or office space in Innovation District. "ATCC's growing campus in Prince William County highlights a major economic opportunity for us," said Christina Winn, executive director, PWCDEDT. "Businesses are actively looking for modern industrial space, places where advanced biomanufacturing, tech innovators, and their suppliers can scale their ideas. The demand is there, and we're in a competitive position to capture it." The event coincided with ATCC's 100th anniversary year, and key leaders were given a guided tour of the new biomanufacturing facility that's under construction. ATCC invested $54.6 million to build the new lab and when complete, it will create 75 new high-paying jobs... ATCC will continue its central role in supporting U.S. priorities in health, biosecurity, and domestic biomanufacturing. "This is the next century of biology, and we at ATCC are proud to be supporting it." said Cheng. "Our global competitiveness depends on deep collaboration and collective action." About NSCEB The National Security Commission on Emerging Biotechnology is a time-limited, high-impact legislative branch advisory entity whose purpose is to advance and secure biotechnology, biomanufacturing, and associated technologies for U.S. national security and to prepare the United States for the bioindustrial revolution. The Commission published a comprehensive report in April 2025, including recommendations for action by Congress and the federal government. The bipartisan Commission is composed of Congressionally appointed Commissioners with members from both the Senate and the House of Representatives as well as experts from industry, academia, and government. For more information about the Commission and to view the report, visit: biotech.senate.gov. Share this.

TMCnet
Jan 17th, 2025
ATCC Appoints Dr. Ruth Cheng as New President and Chief Executive Officer

[January 17, 2025] ATCC appoints dr. Ruth cheng as new president and chief executive officer ATCC, the world's premier biological materials management and standards organization, today announced the appointment of ruth R. Cheng, phd, as president and chief executive officer (CEO).