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Remote Biomedical Research Assistant Jobs in Florida

Program Evaluation & Research Support * Assist with program evaluation for MedNexus initiatives ... Hybrid and remote work options may be available depending on project needs. * Compensation ...

Remote Virtual Assistant

Saint Petersburg, FL · Remote

$20 - $27/hr

Freelance as a Virtual Assistant and Work from Home With FreeUp Hi! We're FreeUp! FreeUp is a ... Data entry and research * Creating presentations * Etc. etc.! How to Apply to Be a FreeUp ...

Oncology CTMS Analyst

Miami, FL · Remote

$28 - $38/hr

Create reports, dashboards, and data extracts to support clinical research operations * Assist with ... Location: Fully Remote * Opportunity to support a nationally recognized hospital's oncology ...

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Remote Biomedical Research Assistant information

What is a remote biomedical research assistant?

A Remote Biomedical Research Assistant is a professional who supports biomedical research projects from a remote or off-site location. Their responsibilities typically include data collection and analysis, literature reviews, preparing research reports, and assisting with experiment coordination. They work closely with research teams, often using digital communication and project management tools. This role allows individuals to contribute to advancements in medical science without being physically present in a laboratory or research facility.

How does a remote biomedical research assistant typically collaborate with laboratory teams and principal investigators?

As a remote biomedical research assistant, collaboration is primarily achieved through virtual meetings, cloud-based data sharing, and regular email or chat communication. You’ll often coordinate with laboratory teams to receive experimental data, assist with data analysis, and contribute to writing reports and publications. Building strong communication skills is essential, as you may need to clarify research protocols, troubleshoot issues, and stay aligned with project timelines, all while working from a distance. Many organizations also use project management tools to track tasks and progress, ensuring everyone is informed and connected.

What are the key skills and qualifications needed to thrive as a remote biomedical research assistant, and why are they important?

To thrive as a Remote Biomedical Research Assistant, you need a solid background in biology or biomedical sciences, experience with data analysis, and often a bachelor's degree in a related field. Familiarity with software like Microsoft Excel, statistical tools such as SPSS or R, and collaborative platforms like Zoom or Slack is typically required. Excellent time management, attention to detail, and proactive communication are essential soft skills for remote teamwork. These skills and qualities ensure accurate research support, effective virtual collaboration, and reliable contribution to ongoing scientific projects.
What are popular job titles related to Remote Biomedical Research Assistant jobs in Florida? For Remote Biomedical Research Assistant jobs in Florida, the most frequently searched job titles are:
What cities in Florida are hiring for Remote Biomedical Research Assistant jobs? Cities in Florida with the most Remote Biomedical Research Assistant job openings:

$95K/yr

Full-time

Medical, Dental, Vision, Life, Retirement, PTO

Posted 2 days ago

New


Job description

Johnson & Johnson Innovative Medicine is seeking a Translational Post Doctoral Researcher – Agentic AI for Neurodegeneration for a 2‐year fixed‐term position. This position can be located in either Raritan, New Jersey; Titusville, New Jersey; Spring House, Pennsylvania; San Diego, California or Cambridge, Massachusetts (no fully remote option). Location: Cambridge, Massachusetts; Raritan, New Jersey; Titusville, New Jersey; Spring House, Pennsylvania; San Diego, California. Role Overview The role will be embedded in the Machine Intelligence (MI) team at J&J Innovative Medicine, working in partnership with the c-brAIn academic network. The researcher will engage with multi‐modal neuroscience data—understanding each modality, building evaluation frameworks, and partnering with translational and experimental teams at Washington University in St. Louis and other partner institutions. Mentorship is designed to develop leaders at the intersection of Multi‐Modal Data, AI Evaluation, and Neurodegeneration. Key Responsibilities Multi‐Modal Data Integration: Characterize and integrate biomedical data modalities—including digital pathology, neuroimaging, omics, and longitudinal clinical data—to develop specialized, domain‐specific models for neurodegeneration. Multi‐Modal Data Integration: Build and refine data engineering pipelines that harmonize heterogeneous modalities—reconciling differences in spatial resolution, temporal scale, and dimensionality—into unified analytical frameworks. Multi‐Modal Data Integration: Identify where cross‐modal integration produces genuine insight versus where it introduces noise or artifact, establishing ground truth for downstream AI evaluation. Agentic AI Evaluation: Critically assess AI‐driven literature synthesis and automated "third reviewer" capabilities for detecting methodological weaknesses, logical gaps, and unsupported claims across data modalities. Agentic AI Evaluation: Establish standards for how agentic systems incorporate overlooked or contradictory evidence such as negative findings or failed clinical trials and evaluate whether these integrations generate genuinely novel hypotheses. Agentic AI Evaluation: Design evaluation frameworks for agentic AI systems operating across neuroscience data modalities—assessing whether models can reason credibly across imaging, omics, and clinical evidence. Agentic AI Evaluation: Develop benchmarks using synthetic and real‐world multi‐modal datasets that probe AI co‐scientist capabilities under realistic research conditions, testing for robustness, reproducibility, and alignment with expert‐level biomedical reasoning. Research & Communication: Serve as a neurodegeneration domain expert within the AI/ML team, ensuring that model outputs remain anchored to clinically relevant disease questions. Research & Communication: Translate evaluation findings into actionable guidance for AI system development, bridging computational and experimental perspectives. Research & Communication: Publish evaluation methodologies and findings in leading journals and conferences (e.g., AD/PD, AAIC, NeurIPS). Research & Communication: Articulate emerging AI/ML approaches—causal reasoning, intent classification, agentic planning—to diverse audiences with clear framing of practical applications in drug discovery. Research & Communication: Co‐author manuscripts, concept papers, and translational strategy documents. Required Qualifications Ph.D. (or M.D./Ph.D.) in neuroscience, neurobiology, computational neuroscience, biomedical informatics, or a closely related field (degree completed within the last three years or to be completed within the next six months). Deep knowledge of neurodegenerative disease biology (Alzheimer's, Parkinson's, etc.) including disease mechanisms, experimental models, and translational challenges. Hands‐on experience working with at least two of the following data modalities in a research context: neuroimaging (PET, MRI), digital pathology, omics, longitudinal clinical data. Familiarity with large language model architectures and agentic AI frameworks (e.g., LangGraph, DSPy, or equivalent orchestration tools). Proficiency in Python and common machine‐learning/data‐engineering frameworks. Excellent scientific communication skills and comfort working across computational, translational, and experimental teams. Self‐directed, with the ability to work both independently and within a diverse, multi‐disciplinary team. Preferred Qualifications Experience building data pipelines that integrate heterogeneous biomedical data types. Familiarity with evaluation or benchmarking methodologies for AI/ML systems. Experience with natural language processing techniques: named entity recognition, natural language inference, knowledge graph construction. Knowledge of graph data structures, graph analytics, and graph platforms (Neo4j, Neptune). Familiarity with cloud infrastructure (AWS and/or Azure) for scalable pipelines. Compensation and Benefits Base pay range: $79,000 – $127,650 for positions in the United States. Eligible for an annual performance bonus in accordance with the applicable plan. Health, dental, vision, life insurance, short‐ and long‐term disability, and business accident insurance. Group legal insurance and consolidated retirement plan (401(k)). Time‐off benefits: up to 120 hours of vacation per calendar year, up to 40 hours of sick time, up to 13 days of holiday pay (including floating holidays), up to 40 hours of work, personal and family time per calendar year. Equal Opportunity Employer Johnson & Johnson is an Equal Opportunity Employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, age, national origin, disability, protected veteran status or other characteristics protected by federal, state or local law. Johnson & Johnson is committed to providing an interview process that is inclusive of our applicants' needs. If you are an individual with a disability and would like to request an accommodation, external applicants may contact us via the company's contact page and internal employees contact the accommodation resource. #J-18808-Ljbffr