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Business Analyst Sql R Python Jobs in San Jose, CA

Company Description Intelliswift Software, Inc Must have experience in managing applications on SQL ... Must have design and analysis experience in large full life cycle software development projects ...

You're a Business Intelligence or Market/Financial Analyst who is looking for an opportunity where ... Experience with BI and data warehouse technologies, primarily SQL Server and SSIS * Experience with ...

Python/ Django + SQL Engineer

San Francisco, CA

$59.25 - $81.50/hr

Python/ Django + SQL Engineer We are looking for top-notch Python/ Django frontend developers with ... You will work with a team to build an analytics and metrics platform using Python and common web ...

Python/ Django + SQL Engineer

San Francisco, CA · On-site

$59.25 - $81.50/hr

Python/ Django + SQL Engineer We are looking for top-notch Python/ Django frontend developers with ... You will work with a team to build an analytics and metrics platform using Python and common web ...

We provide a full range of "Consulting Services" from strategic business analysis to full ... Sparx Enterprise Architect, SQL Server 2000, Oracle, SQL, TOAD, Rational Requisite Pro.

The position requires a strong technical background in SQL and Oracle PL/SQL, as well as solid business and data analysis experience. Familiarity with web development and knowledge of the MS Windows ...

We provide a full range of "Consulting Services" from strategic business analysis to full ... Sparx Enterprise Architect, SQL Server 2000, Oracle, SQL, TOAD, Rational Requisite Pro. Additional ...

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Business Analyst Sql R Python information

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How much do business analyst sql r python jobs pay per hour?

As of Aug 8, 2026, the average hourly pay for business analyst sql r python in San Jose, CA is $55.59, according to ZipRecruiter salary data. Most workers in this role earn between $41.68 and $69.57 per hour, depending on experience, location, and employer.

What is a business analyst SQL R Python?

Business Analyst SQL R Python roles refer to positions where professionals analyze business data and processes using tools such as SQL for database querying, and R or Python for statistical analysis and data visualization. These analysts help organizations make data-driven decisions by extracting, interpreting, and presenting insights from large datasets. They often work closely with stakeholders to understand business requirements and translate them into technical solutions. Proficiency in SQL, R, and Python allows them to efficiently manipulate data, build predictive models, and automate reporting tasks.

What are the key skills and qualifications needed to thrive as a business analyst with SQL, R, and Python expertise?

To thrive as a Business Analyst with SQL, R, and Python expertise, you need strong analytical skills, business acumen, and a background in data analysis or a related field. Proficiency with SQL for database querying, R and Python for data manipulation and statistical analysis, and familiarity with business intelligence tools are typically required. Excellent communication, problem-solving abilities, and stakeholder management skills help you translate complex data insights into actionable business strategies. These skills ensure you can extract, interpret, and present data-driven recommendations that support informed decision-making and drive business value.

How do business analysts with SQL, R, and Python typically collaborate with data engineering and product teams?

Business Analysts with SQL, R, and Python skills frequently work alongside data engineering teams to define data requirements, validate data pipelines, and ensure data quality for analysis. They also collaborate with product teams to translate business needs into actionable insights and develop data-driven recommendations. Regular communication is essential, as analysts often bridge the gap between technical and non-technical stakeholders, facilitating workshops or meetings to clarify requirements and present findings. This collaborative environment helps ensure that analytical solutions are both technically sound and aligned with business goals.
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Business Analyst - Scientific AI, with Data Statistics & Programming

Neurolynx Global inc

Foster City, CA • On-site

Other

Posted 2 days ago

New


Job description

Business Analyst – Scientific AI, with Data Statistics & Programming – REQ

Full-Time / Direct-Hire  |  Foster City , CA USA

About the Role

We''re hiring a Scientific Business Analyst with hands-on AI exposure to help translate complex clinical and R&D problems into well-structured, AI-ready requirements. You''ll sit at the intersection of life sciences and AI product delivery — partnering with Product Managers, AI Engineers, Data Scientists, and clinical stakeholders to shape use cases, define success metrics, and drive requirements through to release. This role is ideal for someone who can independently own the full BA lifecycle for AI-enabled scientific products, from discovery through UAT.

Required Skills / Experience

•        Solid understanding of the clinical development lifecycle and pharmaceutical R&D processes

•        8+ years of experience within pharmaceutical, biotech, or clinical research organizations

•        8+ years of business analysis and requirements-gathering experience, ideally on data or AI-enabled products

•        Demonstrated ability to translate ambiguous scientific or business problems into structured, testable requirements

•        4+ years defining KPIs, success metrics, and measurable outcomes for product or process initiatives

•        Experience owning UAT planning, execution, and stakeholder sign-off

•        Working knowledge of clinical development concepts (trial phases, regulatory milestones, translational science)

•        Bachelor''s or Master''s degree in Life Sciences, Health Sciences, Biotechnology, Biomedical Sciences, Pharmacy, or a related field

•        Comfortable working independently with minimal oversight in a fast-moving, ambiguous environment

What You''ll Do

•        This role carries the full scientific business analysis and adds hands-on statistical and programming capability.

•        Translate business and scientific needs into AI-ready requirements — covering input data expectations, model outputs (predictions, insights, recommendations), and user interaction patterns (workflows, prompts, dashboards)

•        Own UAT end to end — plan, scenarios, cycles, defect triage, summary report.

•        Apply working knowledge of clinical research and drug development to ensure requirements and acceptance criteria reflect true scientific intent

•        Document functional and AI-specific requirements, including data inputs, model outputs, and user workflows, with clear acceptance criteria

•        Lead requirements refinement — current/future-state analysis, prioritization, feasibility discussions, and stakeholder alignment

•        Act as the primary bridge between business needs and technical feasibility across scientific and engineering teams

•        Own UAT planning and execution end-to-end, partnering with QA/testing teams to ensure requirements are testable

•        Work within Agile/Scrum delivery using Jira or Azure DevOps

•        Python for analysis: pandas and numpy, fluently, matplotlib or seaborn, scikit-learn and stats models well enough to prototype and to read someone else''s model code.

•        Advanced SQL — window functions, CTEs — for independent investigation across large datasets. R where the biostatistics teams work in it. Jupyter and Git as normal practice

Key Deliverables

•        User stories and acceptance criteria maintained in Jira/ADO; formal URS/FRS documentation where required

•        Current- and future-state artifacts: process flows, data flows, and impact summaries

•        Data specifications, source-to-target mappings, and AI input/output definitions, produced in partnership with Data and AI teams

•        UAT plans, test scenarios, and test cases aligned to approved requirements

•        UAT execution: test cycle coordination, defect logging, retesting, and summary reporting

•        Regular status reporting covering progress, risks, issues, and dependencies

Good to Have

•        Understanding of AI/ML concepts and Generative AI solutions

•        Exposure to prompt engineering, AI agents, or LLM-based workflows

•        Experience working with AI products, analytics platforms, or intelligent automation initiatives

•        Basic Python for exploratory data analysis

•        Basic SQL for data validation and analysis

•        GxP / Computer System Validation (CSV) exposure

What Success Looks Like

•        You understand business priorities, clinical workflows, and the AI product roadmap well enough to drive independently

•        Stakeholders trust you to turn ambiguous scientific problems into clear, well-scoped AI requirements

•        Your BA artifacts (user stories, URS/FRS, process flows, acceptance criteria) are consistently release-ready

•        AI input/output definitions and success metrics are clearly established for prioritized initiatives

•        UAT cycles you lead result in clean, on-time releases with minimal requirement rework

•        You become a trusted partner bridging scientific stakeholders and AI engineering teams

Why Join Us

Work at the intersection of AI and life sciences, helping shape the next generation of drug discovery and clinical development tools. Partner daily with scientists, clinicians, AI engineers, and product leaders on Generative AI and agentic AI initiatives with real-world healthcare impact. Gain hands-on exposure to modern AI and cloud-based data platforms, in a collaborative environment built around continuous learning and growth.