Drive the design and implementation of advanced scientific data solutions. Collaborate with cross-functional teams to leverage AI/ML methodologies. Transform complex scientific data into actionable insights.
Key Highlights
Key Responsibilities
Technical Skills Required
Benefits & Perks
Job Description
Job Title: Scientific Data Architect
Work Location: St. Louis County, MO
DOES OFFER RELOCATION
Summary:
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Seeking a Scientific Data Architect to drive the design and implementation of advanced scientific data solutions. This role focuses on transforming complex scientific data into actionable insights, collaborating with cross-functional teams, and leveraging AI/ML methodologies to accelerate scientific outcomes. The ideal candidate is a proactive problem-solver with deep experience in life sciences, data modeling, and cloud-based product development.
Responsibilities:
- Engage directly with scientific stakeholders to understand data challenges and requirements, building strong relationships and accelerating tailored solutions.
- Design and implement scalable, reusable data models to efficiently organize scientific data for diverse use cases.
- Translate scientific workflows into robust, cloud-based solutions using advanced data platforms and tools.
- Prototype and implement solutions including data model design (tabular & JSON), Python-based parser development, and lab software integration via APIs.
- Develop data visualization and applications in Python, utilizing frameworks such as Streamlit and plotting tools like holoviews and Plotly.
- Collaborate with business analysts, scientists, and AI engineers to develop and deploy machine learning, AI, mechanistic, statistical, and hybrid models.
- Iterate dynamically with end users and technical stakeholders, driving solution adoption through regular demos, meetings, and proactive communication.
- Rapidly learn and apply new technologies to troubleshoot and develop scientific use cases, while contributing to product roadmap prioritization based on user feedback.
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Qualifications:
- PhD with 7+ years or Master’s with 10+ years of industry experience in life sciences, with extensive domain knowledge in drug discovery, preclinical development, CMC, or product quality testing.
- Proven experience defining, designing, prototyping, and implementing AI/ML-driven use cases in cloud environments.
- Strong background collaborating with cross-functional teams, including product managers, engineers, and scientific stakeholders.
- Expertise in exploratory data analysis and workflow optimization to enable novel scientific outcomes.
- Excellent communication and storytelling skills, with the ability to engage audiences ranging from scientists to executive stakeholders.
- Consulting experience advising scientists to advance research, development, and quality testing outcomes.
- Hands-on experience with Python, data modeling (tabular & JSON), API integration, and scientific application development.
- Demonstrated ability to rapidly learn new tools, technologies, and scientific domains.
- Strong ownership mentality and a track record of building extensible data models and applications for scientific end users.
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