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Lead Engineer - Data Engg & AI

Anblicks
  • Dallas, TX
    5 days ago

    Job Description

    We are seeking a Lead AI Engineer to own the end-to-end technical delivery of an enterprise data and AI platform. This is a hands-on leadership role, onshore and client-facing, responsible for the platforms cloud data architecture, machine-learning and AI pipelines, and CI/CD, while directing an onshore/offshore engineering team and serving as the primary technical point of contact for stakeholders. The successful candidate combines deep data-engineering expertise with applied AI/ML and the delivery ownership needed to take features from requirements through production.

    Key Responsibilities

    • Own end-to-end delivery of the data and AI platform across ingestion, curation, and consumption layers, including the analytics and machine-learning tiers.
    • Design and build cloud data engineering assets: stored procedures, orchestrated pipelines/DAGs, dimensional and canonical data models, transformation views, and idempotent, re-runnable ingestion.
    • Architect, develop, and productionize the AI/ML layer from feature engineering through training, scoring, deployment, and monitoring.
    • Build and operationalize a portfolio of models spanning supervised, unsupervised, and deep-learning approaches, and integrate model outputs back into downstream consumption surfaces.
    • Establish MLOps practices: feature stores, experiment tracking, model registry and versioning, automated retraining, and production model monitoring for drift and performance.
    • Deliver model explainability and transparency to support trust, auditability, and stakeholder confidence.
    • Evaluate and apply generative AI / large language models where they add value (e.g., retrieval-augmented workflows, summarization, or assisted analytics).
    • Manage the full CI/CD lifecycle: Git branching strategy, pull-request reviews, environment promotion, and controlled production deployments with approval gates.
    • Lead and mentor a distributed onshore/offshore team; set engineering standards, review code, and ensure consistent delivery quality.
    • Act as the technical liaison to stakeholders and SMEs; run working sessions, drive design and methodology decisions to closure, and manage delivery governance and reporting.
    • Own technical documentation and delivery artifacts, and support UAT, cutover, and production readiness.

    AI/ML Focus Areas

    • Supervised learning: classification and ranking models (e.g., gradient-boosted trees such as XGBoost/LightGBM) trained on labeled outcomes to prioritize and score records.
    • Unsupervised learning: anomaly and outlier detection (e.g., Isolation Forest), clustering, and entity-level behavioral profiling (e.g., autoencoders/reconstruction-error methods).
    • Deep learning: neural architectures for representation learning, embeddings, and sequence/temporal modeling where appropriate.
    • Generative AI / LLMs: prompt design, retrieval-augmented generation, embeddings-based search, and evaluation of LLM outputs for enterprise use cases.
    • Explainability & responsible AI: feature attribution (e.g., SHAP), model transparency, bias/fairness checks, and audit-ready documentation.
    • MLOps & scaling: in-warehouse/native ML execution (e.g., Snowpark ML), feature stores, model registries, automated pipelines, and monitoring for drift and degradation.

    Required Skills & Experience

    • 8+ years in data engineering and applied machine learning, with 3+ years in a technical lead or delivery-lead capacity.
    • Expert-level cloud data platform experience (Snowflake strongly preferred): stored procedures, tasks/streams, scripting, performance tuning, and warehouse/role/schema design.
    • Strong SQL and dimensional/data-warehouse modeling (medallion architecture, Kimball).
    • Proven track record building and deploying ML models to production across supervised, unsupervised, and deep-learning techniques, including model explainability.
    • Hands-on experience with modern ML tooling and MLOps (feature engineering, training pipelines, model registry, monitoring); Snowpark ML or equivalent strongly preferred.
    • Working knowledge of generative AI / LLM frameworks and their practical application in enterprise settings.
    • Advanced Python for data and ML workflows and deployment scripting.
    • Git and CI/CD (e.g., Azure DevOps), including PR-based workflows and multi-environment (DEV/PROD) promotion with approval gates.
    • Demonstrated ability to lead distributed teams and interface directly with business and technical stakeholders.
    • Excellent written and verbal communication; comfortable owning client-facing delivery.

    Preferred / Nice-to-Have

    • Experience with data-quality frameworks and automated validation.
    • Dashboarding and lightweight app development (e.g., Streamlit) for analytics delivery.
    • Familiarity with project and collaboration tooling (Jira, Confluence).
    • Exposure to regulated or compliance-driven data environments.

    Education

    Bachelors or Masters degree in Computer Science, Data Engineering, Machine Learning, Information Systems, or a related field (or equivalent professional experience).

    Numbers & Facts

    LocationDallas, TX
    IndustryComputer/IT Services
    Company Size1,500 to 1,999 employees
    Year Founded2004
    Websitehttps://www.anblicks.com/

    About Company

    Since 2004, Anblicks has been helping customers across the globe, enabling them with digital transformation services. Anblicks specialized in delivering Big Four consulting experience to mid-size enterprises. Anblicks employs more than 400 technology professionals and over 100 data analysts and data science experts. With a focus on Logistics, Healthcare, BFSI and Retail industries, Anblicks continues to drive technology innovation while providing customers with world-class levels of services and support. Anblicks is headquartered in Dallas, Texas with additional offices in other U.S. states, Canada and India.

    Skills

    • Acceptance Testingunmatched
    • Artificial Intelligence (AI)unmatched
    • Artificial Intelligence (AI) Programming Languagesunmatched
    • Atlassian JIRAunmatched
    • Behavioral Profilingunmatched
    • Cloud Architectureunmatched
    • Cloud Computingunmatched
    • Code Reviewsunmatched
    • Computer Scienceunmatched
    • Continuous Deployment/Deliveryunmatched
    • Continuous Integrationunmatched
    • Customer Relationsunmatched
    • Data Modelingunmatched
    • Data Qualityunmatched
    • Data Warehousingunmatched
    • Database Designunmatched
    • Deep Learningunmatched
    • Delivery Managementunmatched
    • DevOpsunmatched
    • Documentationunmatched
    • Establish Prioritiesunmatched
    • Gitunmatched
    • Information Technology & Information Systemsunmatched
    • Leadershipunmatched
    • Machine Learningunmatched
    • Machine Toolunmatched
    • Maintain Complianceunmatched
    • Mentoringunmatched
    • Microsoft Windows Azureunmatched
    • Modeling Languagesunmatched
    • Offshoringunmatched
    • Performance Tuning/Optimizationunmatched
    • Presentation/Verbal Skillsunmatched
    • Production Controlunmatched
    • Promotional Programsunmatched
    • Public/Media/Press/Analyst Relationsunmatched
    • Python Programming/Scripting Languageunmatched
    • Reporting Dashboardsunmatched
    • SQL (Structured Query Language)unmatched
    • Scripting (Scripting Languages)unmatched
    • Search Rankingunmatched
    • Snowflake Schemaunmatched
    • Software Developmentunmatched
    • Software Engineeringunmatched
    • Stored Proceduresunmatched
    • Team Lead/Managerunmatched
    • Technical Deliveryunmatched
    • Technical Leadershipunmatched
    • Technical Writingunmatched
    • Use Casesunmatched
    • Warehousingunmatched
    • Writing Skillsunmatched

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