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Analyst Drug Discovery Jobs (NOW HIRING)

About Transcripta Bio Transcripta Bio is a preclinical-stage AI drug discovery company pioneering a ... Basic data analysis skills using Python, R, or similar tools. #J-18808-Ljbffr

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Analyst Drug Discovery information

What does an analyst in drug discovery do?

An Analyst in Drug Discovery plays a key role in researching and evaluating chemical compounds to identify potential new drugs. They use various analytical techniques and tools to collect and interpret data from experiments, helping to determine a compound's suitability for further development. Their responsibilities often include data analysis, reporting findings, and collaborating with scientists from different disciplines to advance drug research projects. Their work supports decision-making in the early stages of pharmaceutical development.

What are the key skills and qualifications needed to thrive as an analyst in drug discovery?

To thrive as an Analyst in Drug Discovery, you need a strong background in biochemistry, molecular biology, or a related scientific field, often with a relevant degree. Familiarity with laboratory information management systems (LIMS), high-throughput screening tools, and data analysis software such as GraphPad Prism or Pipeline Pilot is typical. Excellent attention to detail, problem-solving abilities, and effective communication skills help analysts collaborate and interpret complex data. These competencies are crucial for accurately supporting research, ensuring reliable results, and advancing drug development efforts.

What are some typical challenges an analyst in drug discovery might face when working on early-stage research projects?

Analysts in Drug Discovery often encounter challenges related to data variability and the interpretation of complex biological results, especially during early-stage research. Balancing the need for thorough scientific rigor with tight project timelines can also be demanding. Collaboration with multidisciplinary teams, such as chemists, biologists, and data scientists, is essential to ensure that experimental findings are accurately validated and translated into actionable insights. Adaptability and strong communication skills are key to navigating the fast-paced and evolving nature of drug discovery projects.

What are popular job titles related to Analyst Drug Discovery jobs?

For Analyst Drug Discovery jobs, the most frequently searched job titles are:

Scientist, Drug Discovery

Palo Alto, CA โ€ข On-site

Other

Re-posted 21 days ago


Job description

Transcripta Bio is a preclinical-stage AI drug discovery company pioneering a patient-first approach to therapeutics. Headquartered in Palo Alto, CA, we have built a proprietary closed-loop discovery engine - comprising our Disease Signature Atlas, Drug-Gene Atlas, and Conductor AI platform - that integrates single-cell patient transcriptomics, causal human genetics, and pre-validated chemistry to identify and advance drug candidates with a structural edge over conventional approaches.

We are looking for a Scientist to become a cornerstone of our drug discovery operations. You will own key areas of our experimental platform - from cell culture and high-throughput drug screening to the downstream assays that validate hits, interrogate mechanisms of action, and guide program decisions. This is a handsโ€‘on role with real scientific ownership, where your work directly powers our discovery engine.

What you'll do
  • Maintain, expand, and bank disease-relevant human cell lines, including induced pluripotent stem cells (iPSCs) and iPSCโ€‘derived cell types, while ensuring consistent quality and reproducibility.
  • Lead and support highโ€‘throughput small molecule drug screening campaigns utilizing automated liquid handlers and plateโ€‘based platforms. Design screening workflows, ensure data integrity, and resolve technical issues efficiently.
  • Design and conduct downstream validation experiments to confirm screening hits and interrogate drug mechanisms of action, utilizing highโ€‘content imaging, qPCR, immunocytochemistry, Western blot, ELISA, and quantitative protein assays.
  • Develop and optimize cellโ€‘based assays for diseaseโ€‘relevant biological readouts, collaborating with computational and therapeutic teams to align experimental outputs with platform requirements.
  • Translate complex datasets into clear scientific narratives. Present findings at internal meetings and contribute to reports, publications, and external communications.
  • Maintain detailed records in the electronic laboratory notebook (ELN) and contribute to SOPs, protocol documentation, and best practice development as the organization scales.
  • Serve as a technical resource for junior team members, supporting a culture of scientific excellence.
  • Support lab operations, including reagent preparation, equipment maintenance, and vendor coordination.
Qualifications Required
  • PhD in Cell Biology, Biochemistry, Molecular Biology, Pharmacology, or a closely related field with 3-5+ years of industry or postdoctoral experience; or MS with 6+ years of relevant industry experience.
  • Demonstrated expertise in iPSC maintenance, differentiation, and quality assessment. Experience with primary human cells or diseaseโ€‘relevant iPSCโ€‘derived cell types is strongly preferred.
  • Handsโ€‘on experience running or supporting highโ€‘throughput drug screening workflows, including familiarity with liquid handling automation (e.g., Hamilton, Tecan, Beckman, or equivalent).
  • Relevant experience in small molecule drug discovery, including interrogating drug mechanism of action in cellular models.
  • Proficiency in downstream validation techniques, including highโ€‘content imaging and analysis (e.g., Opera Phenix, ImageXpress), immunocytochemistry, Western blot, and quantitative protein assays (ELISA, MSD, or equivalent).
  • Strong experimental design instincts: ability to independently scope assays, troubleshoot, and interpret data with scientific rigor and speed.
  • Excellent organizational skills and high standards of documentation; comfortable working in an ELNโ€‘based environment.
  • Collaborative and communicative - you thrive in crossโ€‘functional teams and can translate benchโ€‘level findings for computational colleagues and leadership alike.
  • Thrives in a fastโ€‘paced, resourceโ€‘constrained startup environment where adaptability and initiative are essential.
Preferred
  • Experience with functional genomics approaches.
  • Familiarity with transcriptomics methods (bulk or singleโ€‘cell RNAโ€‘seq) or experience working with bioinformatics teams to interpret experimental data.
  • Basic data analysis skills using Python, R, or similar tools.
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