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Data Analytics Blockchain Jobs in Fort Mill, SC (NOW HIRING)

Deep understanding of blockchain technology * First-class investigative capabilities and problem ... data, conduct analysis, and synthesize insight. * A get things done mindset, able to think ...

... blockchain infrastructure. Circle's platform includes the world's largest regulated stablecoin ... Detail-oriented, highly analytical and comfortable digging into data * Strong communication skills ...

Deep understanding of blockchain technology * An innovative and creative mind looking to suggest ... Detail-oriented, highly analytical and comfortable digging into data * Strong communication skills ...

Underwriting Specialist

Charlotte, NC ยท On-site

$37.21 - $41.35/hr

We're proving that blockchain isn't just theory - it's powering real products used by hundreds of ... Analyze complex financial data, such as tax returns, income statements, and business documentation ...

... blockchain infrastructure. Circle's platform includes the world's largest regulated stablecoin ... Develop data-driven and AI-enabled compliance processes to enhance risk assessment velocity and ...

Principal Product Manager, TradFi

Charlotte, NC ยท On-site +1

$200K - $260K/yr

... blockchain infrastructure. Circle's platform includes the world's largest regulated stablecoin ... Partner closely with data science and analytics to define forecasting, modeling, and decision ...

Customer Care Advisor

Charlotte, NC ยท On-site +1

$29.50 - $41/hr

... blockchain infrastructure. Circle's platform includes the world's largest regulated stablecoin ... Experience with data analytics tools for troubleshooting problems preferred * Experience in ...

Senior Finance Systems Analyst

Charlotte, NC ยท On-site +1

$112K - $147K/yr

... blockchain infrastructure. Circle's platform includes the world's largest regulated stablecoin ... Supporting finance teams in providing responses and data from systems for internal and SOX audits.

... blockchain infrastructure. Circle's platform includes the world's largest regulated stablecoin ... Lead and develop a team of KYC analysts, driving quality, consistency, and risk-based decision ...

Collaborate with blockchain integration teams to expand Arc Network's reach across L1s and L2s ... Partner with Data Science, Growth Engineering, and Dev Rel to instrument funnel analytics, and ...

Director, USDC Application Product

Charlotte, NC ยท On-site +1

$227K - $238K/yr

... blockchain infrastructure. Circle's platform includes the world's largest regulated stablecoin ... analysis, and growth metrics instrumentation - to drive continuous, data-driven improvement * Build ...

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Data Analytics Blockchain information

See Fort Mill, SC salary details

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$48

$83

How much do data analytics blockchain jobs pay per hour?

As of Aug 16, 2026, the average hourly pay for data analytics blockchain in Fort Mill, SC is $48.11, according to ZipRecruiter salary data. Most workers in this role earn between $38.65 and $54.52 per hour, depending on experience, location, and employer.

What are the key skills and qualifications needed to thrive as a Data Analytics Blockchain professional, and why are they important?

To thrive as a Data Analytics Blockchain professional, you need a solid understanding of blockchain technology, data analysis, and programming languages such as Python or SQL, often supported by a degree in computer science, data science, or a related field. Familiarity with blockchain platforms (e.g., Ethereum, Hyperledger), analytics tools (such as Tableau or Power BI), and relevant certifications like Certified Blockchain Expert or data analytics credentials are highly beneficial. Strong problem-solving skills, attention to detail, and the ability to communicate complex findings clearly make you stand out in this field. These skills are crucial for extracting actionable insights from blockchain data, ensuring secure and efficient analysis, and driving informed decision-making in innovative industries.

How does a Data Analytics Blockchain professional typically collaborate with cross-functional teams within an organization?

A Data Analytics Blockchain professional often works closely with software engineers, product managers, and business analysts to design and implement blockchain-based data solutions. Collaboration involves translating business requirements into technical specifications, ensuring data integrity on the blockchain, and developing dashboards or reports that provide actionable insights. Regular meetings and agile workflows are common, enabling seamless knowledge sharing and troubleshooting across teams. This role requires strong communication skills to bridge the gap between technical and non-technical stakeholders, fostering a shared understanding of blockchain's capabilities and analytics outcomes.

What is the difference between Data Analytics Blockchain vs Data Science?

AspectData Analytics BlockchainData Science
Required CredentialsBachelor's in Computer Science, Data Analytics, or related fields; certifications in Blockchain or Data AnalyticsBachelor's or higher in Computer Science, Statistics, or related fields; certifications in Data Science or Machine Learning
Work EnvironmentTech companies, financial institutions, blockchain startupsResearch labs, tech firms, finance, healthcare
Employer & Industry UsageBlockchain projects, cryptocurrency firms, data-driven organizationsData-driven decision making across industries like finance, healthcare, marketing

While both roles involve working with data, Data Analytics Blockchain focuses on analyzing blockchain data and developing blockchain-based data solutions. Data Science has a broader scope, including building predictive models and advanced analytics across various data types. Understanding these differences helps professionals choose the right career path based on their skills and industry interests.

What is a Data Analytics Blockchain professional?

A Data Analytics Blockchain professional specializes in analyzing and interpreting data generated from blockchain networks. They use data analytics techniques and tools to extract insights, track transactions, monitor performance, and detect patterns or anomalies within blockchain systems. Their work helps organizations make data-driven decisions, improve transparency, and enhance security in blockchain-based environments. These professionals often require knowledge of blockchain protocols, data analysis, and sometimes programming or data visualization skills. They may work in industries such as finance, supply chain, or technology.

What are popular job titles related to Data Analytics Blockchain jobs in Fort Mill, SC?

For Data Analytics Blockchain jobs in Fort Mill, SC, the most frequently searched job titles are:

What job categories do people searching Data Analytics Blockchain jobs in Fort Mill, SC look for?

The top searched job categories for Data Analytics Blockchain jobs in Fort Mill, SC are:

Infographic showing various Data Analytics Blockchain job openings in Fort Mill, SC as of August 2026, with employment types broken down into 1% As Needed, 82% Full Time, 13% Part Time, and 4% Contract. Highlights an 87% Physical, 3% Hybrid, and 10% Remote job distribution, with an average salary of $100,066 per year, or $48.1 per hour.

AI/ML Data & ETL Data Architect

DATAECONOMY Inc

Charlotte, NC โ€ข On-site

$130 - $180/hr

Other

Posted 11 days ago


Job description

Charlotte, United States | Posted on 06/04/2026

DATAECONOMY is one of the fastest-growing Data & Analytics company with global presence. We are well-differentiated and are known for our Thought leadership, out-of-the-box products, cutting-edge solutions, accelerators, innovative use cases, and cost-effective service offerings.

We offer products and solutions in Cloud, Data Engineering, Data Governance, AI/ML, DevOps and Blockchain to large corporates across the globe. Strategic Partners with AWS, Collibra, cloudera, neo4j, DataRobot, Global IDs, tableau, MuleSoft and Talend.

AI/ML Data & ETL Data Architect

Charlotte, NC

Full-time


Key Responsibilities

AI/ML Enablement & GenAI
  • Architect feature stores, training/inference pipelines, and MLOps workflows for insurance use cases fraud detection, claims triage, underwriting risk scoring, loss reserving, and customer churn/retention.
  • Design RAG and GenAI solution patterns for claims summarization, policy/document intelligence, and underwriter/agent copilots.
  • Establish model lifecycle controls: versioning, lineage, drift monitoring, evaluation, and human-in-the-loop review.
  • Define responsible-AI and governance guardrails appropriate to a regulated insurance environment (auditability, explainability, bias monitoring).
  • Own the end-to-end target-state architecture for the insurance data platform policy administration, claims, billing, underwriting, actuarial, and reinsurance domains across raw, curated, and analytics-ready layers.
  • Design lakehouse and AI/ML reference architectures (Bronze/Silver/Gold Medallion) that unify structured, semi-structured, and streaming insurance data.
  • Define data domain boundaries, source-to-target mappings, and canonical insurance data models for shared enterprise consumption.
  • Produce architecture diagrams, design decision records, and patterns that engineering teams can implement consistently.
  • Make build-vs-buy, cloud service selection, and cost/performance trade-off decisions and defend them to client architecture review boards.
  • Design scalable, production-grade ETL/ELT frameworks (PySpark, Spark SQL, Delta Live Tables / equivalent, orchestrated Workflows).
  • Define ingestion patterns for batch, micro-batch, and streaming insurance feeds (policy, claims, payments, third-party/bureau data).
  • Establish orchestration, monitoring, alerting, and automation standards for the engineering team.
Data Modeling
  • Design dimensional models (star/snowflake) and canonical/conformed models for analytical and actuarial workloads.
  • Apply normalization/denormalization strategies balancing performance, usability, and regulatory traceability.
  • Ensure data quality, integrity, and alignment with enterprise and insurance regulatory governance policies.
Governance, Security & Compliance
  • Embed PII/PHI handling, masking, tokenization, and least-privilege access models into platform design.
  • Align architecture with insurance regulatory and audit requirements (e.g., NAIC model standards, state DOI, HIPAA where health lines apply, SOC 2, GDPR/CCPA).
  • Define metadata management, data lineage, and cataloging strategy (Unity Catalog or equivalent).
  • Advanced hands-on data engineering: Spark, Delta Lake / lakehouse, Workflows, Unity Catalog (or cloud-native equivalents).
  • AI/ML tooling: MLflow or equivalent, feature stores, model serving, and GenAI/RAG frameworks (LangChain/LangGraph or similar).
  • Strong SQL and Python programming with performance tuning skills.
  • Cloud platform depth (AWS / Azure / GCP), including managed data and ML services.
Required Qualifications
  • Hands-on AI/ML pipeline and MLOps experience, including at least one production GenAI/RAG deployment.
  • Strong command of Medallion architecture (Bronze/Silver/Gold) and modern data modeling for warehousing and analytics.
  • Proficiency with PySpark, SQL, ETL/ELT frameworks, and Delta Lake (or equivalent) optimization.
  • Experience with CI/CD, Git, and job orchestration tooling.
  • Insurance, financial services, or other regulated-industry delivery experience.
  • Demonstrated ability to present and defend architecture to senior client and review-board stakeholders.
Preferred Skills
  • Data governance, metadata management, and Unity Catalog (or equivalent) advanced features.
  • Streaming technologies (Auto-Loader / Structured Streaming / Kafka / Event Hubs / Kinesis).
  • Data security, regulatory compliance, and fine-grained access models.
  • Cost optimization and performance tuning in cloud environments.
  • Tools such as Airflow, Databricks Workflows, dbt, or similar.
Requirements
  • Strong Python (PySpark) and SQL programming with performance tuning
  • Databricks (or equivalent) Spark, Delta Lake, Workflows, Unity Catalog
  • ETL/ELT framework design and data modeling (dimensional, star/snowflake, canonical)
  • AI/ML pipelines + MLOps, plus at least one production GenAI/RAG deployment
  • Cloud experience AWS, Azure, or GCP (managed data + ML services)
  • CI/CD, Git, job orchestration
  • 12+ years total; 3+ years as architect/lead; regulated-industry delivery
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