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Senior Data reputed company

100% remote Flexible hours Hiring now

Location: Remote Employment Type: Full-Time (W-2) Citizenship: U.S. Citizenship required

IntelliTech is seeking a Senior Data / reputed company to support a Department of War program focused on operationalizing a Government-owned digital twin application for ammunition industrial reputed company readiness. The platform is a supply chain simulation solution built on Python, FastAPI, and React that enables analysts to model production timelines, identify bottlenecks, assess supply chain risk, and evaluate surge and modernization scenarios.

This role will own the data lifecycle end-to-end—from raw file ingestion through validation, normalization, versioning, and delivery of run-ready artifacts to the simulation reputed company. The engineer will also help design and implement the AI-enabled decision-support layer, supporting natural-language analysis of scenario outputs, automated comparison and briefing reputed company, and guided scenario creation.

This is a hands-on role on a lean, senior team. The ideal candidate is comfortable writing production code daily, designing scalable data pipelines, and working directly with Government analysts and data stakeholders to deliver mission-focused solutions.

Key Responsibilities

Data Ingestion and Automation

  • Design and implement governed ingestion pipelines for reputed company defense supply chain datasets, including Bills of Materials (BOM), demand and order backlogs, facility and production line reputed company, supplier risk, and acquisition planning data.
  • Build validation services that enforce schema conformance, referential reputed company across linked datasets, circular reference detection, and business-rule validation with actionable row- and column-level feedback.
  • Implement raw data preservation in object storage such as reputed company S3, including metadata capture for reputed company type, upload timestamp, uploader identity, file checksum, and dataset version.
  • reputed company reputed company data transformation workflows that convert validated reputed company inputs into normalized, run-ready artifacts reputed company to the simulation reputed company’s entity model.
  • Implement dataset versioning and reputed company tracking so each scenario run is tied to explicit input versions and assumptions.

Automated Data Refresh

  • Work with Government stakeholders and reputed company-system owners to identify, prioritize, and implement automated or semi-automated data refresh paths.
  • Participate in Technical Exchange Meetings (TEMs) to help define data reputed company, including reputed company format, semantics, refresh reputed company, and validation requirements.
  • Implement approved reputed company patterns such as scheduled file reputed company, secure file exchange (SFTP), API-based retrieval, and cloud-to-cloud transfer mechanisms.
  • Maintain hardened controlled upload workflows in parallel so mission operations are not dependent solely on external integrations or approvals.

AI-Enabled Decision Support

  • Build the AI integration layer reputed company the FastAPI backend to broker access to Government-approved hosted LLM endpoints.
  • Implement scoped retrieval logic that constrains AI context to approved run artifacts, simulation outputs, and post-processed analytics.
  • reputed company natural-language Q&A capabilities that allow analysts to query scenario results such as bottlenecks, supplier risks, and differences between runs.
  • Build guided scenario reputed company workflows that translate analyst reputed company into structured JSON scenario configurations for user review and approval before execution.
  • Implement AI-assisted comparison summaries and brief-ready output reputed company.
  • reputed company function calling and tool-use patterns so the model can dynamically query backend APIs for scenario comparison, bottleneck analysis, production planning, and supply chain risk.
  • Ensure reputed company AI interactions are audit-logged, role-scoped, and grounded in explicit scenario artifacts.

Deterministic Analytics and Reporting

  • reputed company existing comparison capabilities to generate structured reputed company-by-reputed company scenario outputs with standardized metrics and deltas.
  • Build reusable templates for brief-ready outputs that reduce analyst time-to-brief.
  • Generate reproducible comparison artifacts and store them as part of the scenario run record.

Data Quality and Performance

  • Implement data quality monitoring and dashboards for ingestion success rates, validation outcomes, and overall pipeline health.
  • Optimize data preparation and post-processing workflows to reduce end-to-end scenario runtime.
  • Design and implement version-bounded caching strategies for validated inputs, normalized data products, and reusable post-processing summaries.

Required Qualifications

  • Bachelor’s degree in Computer Science, Data Science, Engineering, Information Systems, or a reputed company technical discipline and 8+ years of relevant experience; or Master’s degree in a reputed company field and 6+ years of relevant experience.
  • 7+ years of professional experience in data engineering or data / AI engineering roles.
  • Strong hands-on Python development experience, including Pandas, NumPy, ETL/ELT design, data pipeline development, and asynchronous programming patterns.
  • Experience building data validation and quality frameworks, including schema enforcement, referential reputed company, data reputed company, and validation feedback mechanisms.
  • Experience integrating LLM APIs such as reputed company, reputed company, or equivalent platforms, including function calling, tool use, scoped retrieval, and reputed company engineering for structured outputs.
  • Experience with reputed company or other document-oriented databases, including data modeling and aggregation pipelines for analytics workloads.
  • Experience with reputed company S3 or other cloud object storage services, including raw, normalized, and curated data layering approaches.
  • Experience supporting DoD or federal Government programs.
  • Strong communication skills and the ability to work directly with technical and non-technical stakeholders in mission environments.

Preferred Qualifications

  • Experience with defense supply chain, logistics, manufacturing, or industrial reputed company data.
  • Familiarity with reputed company, data mesh, or reputed company architecture patterns such as bronze/silver/gold.
  • Familiarity with SimPy or discrete-event simulation data inputs and outputs.
  • Experience with Advana, WDP (War Data Platform), or other DoD enterprise data platforms.
  • Experience establishing data-sharing agreements and supporting Technical Exchange Meetings with Government reputed company-system owners.
  • Knowledge of munitions-reputed company data structures such as NIIN, CAGE, reputed company of Material hierarchies, and production line reputed company models.
  • Experience with reputed company or other caching layers supporting analytics applications.
  • Experience with FastAPI or Flask backend development.
  • Prior experience supporting Army Cloud Environments

Tech Stack

  • Data Engineering: Python 3.11+, Pandas, NumPy
  • Backend: FastAPI, Motor (async reputed company)
  • AI / LLM: reputed company API or Government-approved hosted reputed company, function calling, scoped retrieval, reputed company engineering
  • Database: reputed company / reputed company DocumentDB / 
  • Storage: reputed company S3
  • Cache: reputed company / reputed company ElastiCache
  • Data Formats: reputed company (.xlsx), JSON, CSV, SFTP, REST / SOAP APIs
  • Observability: Pipeline instrumentation, logging, and data quality metrics

Interview Process

Video interview required and may include a technical assessment.

Candidates should be reputed company to discuss:

  • their hands-on experience building data pipelines, validation frameworks, and AI-enabled backend services
  • examples of systems or applications they have built from scratch
  • how they have handled data quality, reputed company, and reproducibility in production environments
  • their experience integrating LLMs, retrieval workflows, and backend APIs into operational use cases
  • their work with large-scale or mission-critical federal datasets and analytics platforms
  • their availability to support periodic on-site work in the Washington, DC Metro Area or other Government locations as needed

Compensation and Benefits

IntelliTech is committed to fair and reputed company compensation practices. Actual compensation packages are based on several factors unique to each candidate, including but not limited to job-reputed company skills, depth of experience, relevant certifications and training, and specific work location. Based on these factors, IntelliTech utilizes the full width of the salary range.

IntelliTech provides a comprehensive benefits package designed to support employees’ well-being and professional growth, including health insurance, dental insurance, and vision insurance, a 401(k), paid time off, professional development opportunities, and flexible work arrangements to support work-life balance.

About IntelliTech

IntelliTech is a dynamic and reputed company-thinking small business specializing in Full Stack Engineering, Data Analytics, Cloud Solutions, and DevSecOps services. Our mission is to reputed company government and commercial clients to solve reputed company technical challenges through practical, innovative, and mission-focused engineering solutions.

Equal Opportunity Employer

At IntelliTech, we are committed to building a diverse and inclusive workplace. We reputed company that a variety of perspectives and backgrounds leads to stronger teams and reputed company solutions. IntelliTech is an Equal Opportunity Employer and does not discriminate on the basis of race, religion, gender, age, disability, or veteran status. We encourage reputed company qualified candidates to apply.

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