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Johns Hopkins University AppliedPhysicsLaboratory
Laurel, Maryland • Today
Full-time
USD 105,000.00 per year













Title: Senior Data Scientist
Location: Must be onsite in McLean, VA for 5 days a week (Monday to Friday)
Duration: Long Term
Interview Mode: In-Person interview
Notes:
Looking for a Senior Data Scientist with strong Python and Computer Vision skills to design, build, test, and operationalize capabilities that convert image-based content and model outputs into usable, reviewable, and analytics-ready data products
Need someone with hands-on experience coding computer vision or image-processing solutions using Python and common libraries such as OpenCV, Pillow, PyTorch, TensorFlow, or similar frameworks.
Need someone with strong ability to process image files, extracted labels, model predictions, confidence scores, annotations, bounding boxes, and metadata payloads
Need someone who has experience writing modular, maintainable code for automation, validation, transformation, testing, and troubleshooting
Job Description:
We are seeking a hands-on Data Scientist with strong Python and Computer Vision skills to design, build, test, and operationalize capabilities that convert image-based content and model outputs into usable, reviewable, and analytics-ready data products. This role requires strong software engineering fundamentals, computer vision coding experience, data engineering skills, and the ability to partner across product, modeling, engineering, research, and business teams.
The Data Scientist will contribute to capabilities for image extraction, metadata generation, model-output validation, quality review enablement, and downstream structured data integration. The role is expected to balance Python development, testing, analytical troubleshooting, and delivery execution to help users review, validate, and act on computer vision outputs.
Key Responsibilities:
Computer Vision Development & Model Output Engineering
Develop, enhance, and maintain code that supports computer vision model output processing, image extraction, metadata generation, and validation workflows
Work with image-based model outputs, bounding boxes, labels, confidence scores, extracted attributes, and structured metadata to support downstream review and analysis
Build reusable utilities for parsing, transforming, validating, and comparing computer vision outputs across model versions and production-style runs
Apply strong Python coding practices to automate testing, issue detection, data preparation, and model-output quality checks
Product & QC Workflow Enablement
Support product capabilities that allow users to review, validate, correct, and quality check model-generated outputs
Translate computer vision models output into user-facing review patterns, QC screens, exception workflows, and validation experiences
Partner with UI developers, product owners, and business users to define practical capabilities for model-output inspection and operational review
Test Data, Validation & Quality Engineering
Create and manage representative test datasets for image extraction, metadata validation, regression testing, and model performance review
Perform structured testing of model runs across historical and current datasets to identify extraction gaps, metadata issues, formatting errors, and quality concerns
Validate extracted images, image classifications, and metadata against original PDFs, appraisal reports, and other authoritative source documents to confirm completeness, accuracy, and traceability
Document defects with clear evidence, expected results, actual results, severity, reproducible examples, and recommended remediation steps
Retest remediated issues and contribute to repeatable quality gates for model-output readiness
Data Integration, JSON Engineering & Analytics
Readiness Develop scripts and data pipelines that convert model outputs into structured and semi-structured formats suitable for research, analytics, and downstream consumption
Support loading and validation of model outputs as JSON Variant or similar semi-structured data formats
Ensure extracted image attributes, metadata, and model-output payloads are traceable, consistent, and accessible for analysis
Cross-Functional Delivery & Technical Problem Solving
Collaborate across product management, model development, UI engineering, data engineering, research, business, and delivery teams to operationalize computer vision capabilities within data-driven products
Investigate technical issues across image inputs, model outputs, metadata payloads, data loads, and user-facing QC workflows
Communicate progress, risks, blockers, and technical findings clearly to engineering partners and business stakeholders
Required Qualifications:
Computer Vision Coding & Software Engineering
Hands-on experience coding computer vision or image-processing solutions using Python and common libraries such as OpenCV, Pillow, PyTorch, TensorFlow, or similar frameworks
Strong ability to process image files, extracted labels, model predictions, confidence scores, annotations, bounding boxes, and metadata payloads
Experience writing modular, maintainable code for automation, validation, transformation, testing, and troubleshooting
Data Engineering & Semi-Structured Data
Strong SQL and Python skills for working with relational data, semi-structured data, JSON, API outputs, and analytical datasets
Experience preparing model outputs for downstream systems using JSON, Variant-style data structures, metadata files, or similar formats
Ability to design validation logic, reconciliation checks, and data quality rules for image-derived outputs
Testing, Debugging & Quality Validation
Experience testing model-output pipelines, identifying defects, analyzing root causes, documenting issues, and supporting retesting after remediation
Ability to create representative test datasets and compare expected versus actual computer vision output across runs
Experience validating extracted image outputs against source PDFs, appraisal documents, supporting files, and other ground-truth reference materials
Strong analytical skills to detect anomalies, data gaps, misclassifications, format issues, and model-output inconsistencies
Product, UI & Workflow Collaboration
Experience working with product and engineering teams to support user-facing applications, QC workflows, review screens, or operational tools
Ability to translate technical model-output structures into practical user, data, and system requirements
Strong collaboration, communication, ownership, and delivery execution skills in a fast-paced technical environment
Preferred Qualifications:
Experience with appraisal images, property photos, mortgage data, or other document/image-heavy business processes
Familiarity with image extraction, object detection, classification, OCR, metadata extraction, or computer vision evaluation techniques
Experience comparing extracted image content and metadata back to source documents to support auditability, traceability, and quality control
Exposure to Snowflake Variant, JSON analytics pipelines, data lake patterns, or research data environments
Experience supporting Freddie Mac, Fannie Mae, GSE, financial services, housing, or appraisal-related technology initiatives
Familiarity with UAD, appraisal modernization, model validation, or AI-enabled quality control workflows.
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