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Director Data Analyst Machine Learning Jobs in Columbus, OH

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Director Data Analyst Machine Learning information

See Columbus, OH salary details

$32.8K

$79.8K

$131.4K

How much do director data analyst machine learning jobs pay per year?

As of Sep 5, 2026, the average yearly pay for director data analyst machine learning in Columbus, OH is $79,822.00, according to ZipRecruiter salary data. Most workers in this role earn between $60,400.00 and $93,700.00 per year, depending on experience, location, and employer.

What is the difference between Director Data Analyst Machine Learning vs Data Scientist?

AspectDirector Data Analyst Machine LearningData Scientist
Required CredentialsBachelor's or Master's in Data Science, Computer Science, or related fields; experience in machine learningBachelor's or Master's in Data Science, Statistics, Computer Science; strong programming skills
Work EnvironmentLeads teams, manages projects, strategic planningHands-on data analysis, model development, experimentation
Employer & Industry UsageTech companies, finance, healthcare, retailResearch institutions, tech firms, consulting

The main difference is that the Director Data Analyst Machine Learning oversees teams and strategic initiatives, while Data Scientists focus on developing models and analyzing data directly. The director role emphasizes leadership and project management, whereas data scientists are more hands-on with technical tasks.

What are popular job titles related to Director Data Analyst Machine Learning jobs in Columbus, OH?

For Director Data Analyst Machine Learning jobs in Columbus, OH, the most frequently searched job titles are:

What job categories do people searching Director Data Analyst Machine Learning jobs in Columbus, OH look for?

The top searched job categories for Director Data Analyst Machine Learning jobs in Columbus, OH are:

What cities near Columbus, OH are hiring for Director Data Analyst Machine Learning jobs?

Cities near Columbus, OH with the most Director Data Analyst Machine Learning job openings:

Accenture Edge for AWS Tech Practice Leader - Data and AI

Accenture

Hartford, OH • On-site

Full-time

Medical, Dental, Vision, Life, Retirement, PTO

Posted 3 days ago

New


Accenture Federal Services rating

8.7

Company rating: 8.7 out of 10

Based on 20 frontline employees who took The Breakroom Quiz

51st of 500 rated business services


Job description

Accenture Edge for AWS is seeking a Tech Practice Leader - Data and AI to build and lead the practice serving mid-market companies up to $3B in annual revenue. This leader owns the practice vision, offerings portfolio, architecture standards, delivery model, reusable assets, talent strategy, and governance required to modernize data foundations, deliver analytics and machine learning solutions, and scale secure, responsible generative AI and agentic AI applications on AWS.

The ideal candidate combines deep data engineering, analytics, machine learning, and generative AI architecture credibility with field CTO-style customer engagement, presales solutioning, product and platform thinking, and delivery governance. This role is accountable for creating repeatable offerings across data strategy, lakehouse and data mesh architectures, data migration, governance, business intelligence, advanced analytics, machine learning, Amazon Bedrock, Amazon SageMaker AI, retrieval-augmented generation, intelligent agents, AI security, model evaluation, responsible AI, and AI operations.

Key Responsibilities
  • Build and lead the practice: Define the Data and AI strategy, offerings portfolio, investment priorities, operating model, delivery capacity, ecosystem partnerships, and growth roadmap.

  • Own portfolio and solution quality: Lead offerings across data strategy, data platforms, lakehouse and data mesh, data migration, governance, integration, business intelligence, advanced analytics, machine learning, generative AI, agentic AI, and AI operations.

  • Own bookings and revenue growth: Carry direct accountability for $50M-$100M in annual practice bookings and revenue, partner with sales leaders and AWS field teams to originate opportunities, qualify use cases, shape value propositions, and convert discovery sessions, data assessments, and proofs of value into production Data and AI pipeline.

  • Lead strategic pursuits: Act as the senior technical and commercial sponsor for priority deals, owning use-case prioritization, data readiness, architecture, value realization, responsible AI controls, estimation, executive presentations, proposal quality, and technical close.

  • Activate AWS co-sell and Marketplace: Create packaged Data and AI solutions that are easy for AWS sellers to position, support ACE progression, use applicable funding, and develop AWS Marketplace-ready offers with clear scope, price, outcomes, evaluation criteria, and procurement paths.

  • Build market demand: Create account-based campaigns, executive briefings, AI innovation days, workshops, assessments, and industry sales plays focused on data modernization, AI-ready foundations, generative AI, intelligent agents, responsible AI, and AI operations.

  • Establish thought leadership: Develop differentiated points of view on enterprise AI value, data readiness, productionizing generative AI, agentic operating models, responsible AI, model and data governance, adoption, and AI economics for mid-market customers.

  • Represent the practice externally: Publish articles and research-backed perspectives; speak at customer, analyst, industry, and AWS events; lead webinars and roundtables; and build relationships with CIO, CTO, CDO, CAIO, CISO, business, data, risk, and legal leaders.

  • Turn innovation into growth assets: Capture customer references, case studies, reusable demos, quantified benefits, evaluation results, adoption patterns, and lessons learned to improve credibility, cross-sell, repeatability, and win rates.

  • Serve as senior technical sponsor: Lead executive workshops, AI opportunity discovery, Data and AI roadmaps, architecture decisions, value cases, and technical governance for priority customers.

  • Industrialize AI delivery: Establish reusable patterns for retrieval-augmented generation, intelligent agents, model selection, evaluation, guardrails, prompt and knowledge management, observability, security, cost optimization, and lifecycle operations.

  • Strengthen data foundations: Ensure solutions address data quality, metadata, lineage, privacy, security, governance, interoperability, and structured and unstructured data readiness.

  • Ensure delivery readiness: Set clear scope, architecture, datasets, model choices, staffing, pricing assumptions, evaluation criteria, risks, controls, and business outcomes before handoff.

  • Develop technical talent: Build capability frameworks, certification paths, communities of practice, and mentoring for data architects, engineers, scientists, ML engineers, AI architects, and delivery leads.

  • Govern responsible AI: Establish architecture reviews, model and use-case governance, evaluation standards, human oversight, security-by-design, privacy controls, and escalation paths.

  • Drive practice performance: Own annual bookings and revenue attainment, and track practice-sourced and influenced pipeline, conversion, win rate, Marketplace activity, utilization, margin, time to value, solution reuse, model quality, adoption, customer references, thought-leadership reach, certification progress, customer satisfaction, and measurable business outcomes.

Travel may be required for this role. The amount of travel will vary from 25% to 100% depending on business need and client requirements.

Required Qualifications
  • Minimum 15+ years of experience in data, analytics, AI, machine learning, cloud architecture, technology consulting, or transformation delivery, including 8+ years in hands-on data platform, analytics, ML, generative AI, or AWS architecture and delivery.
  • Minimum 5+ years leading and scaling a Data and AI practice, data platform organization, AI center of excellence, analytics service line, or cloud data engineering team, including teams of 25-50 technical professionals.
  • Proven accountability for $50M-$100M in annual Data and AI bookings and revenue, with demonstrated ability to create or influence $100M-$200M in qualified annual pipeline.
  • Minimum 5+ years experience solutioning, governing, or delivering at least 15 data, analytics, ML, or AI engagements, including at least 5 production AI or generative AI solutions and senior technical sponsorship for strategic accounts.
  • Minimum 5+ years expertise in AWS Data and AI architecture, including modern data platforms, governance, analytics, machine learning, Amazon SageMaker AI, Amazon Bedrock, retrieval-augmented generation, intelligent agents, security, and responsible AI.
  • Minimum 5+ years experience leading complex pursuits and executive workshops, translating prioritized use cases into data and AI roadmaps, value cases, production architectures, commercial models, and adoption plans.
  • Minimum 5+ years with executive-level communication and field CTO credibility with CIO, CTO, CDO, CAIO, CISO, business, data, engineering, risk, and legal leaders.
  • Bachelor's degree or equivalent (minimum 12 years) work experience. (If Associate's Degree, must have minimum 6 years work experience)
Preferred Experience
  • Experience leading technical governance for 10+ large-scale data or AI programs, covering architecture quality, data governance, security, evaluation, responsible AI, delivery risk, and executive alignment.
  • Experience contributing to 10+ strategic pursuits, RFPs, executive workshops, proofs of value, or deal-shaping efforts annually.
  • Experience launching 3+ go-to-market sales plays or packaged offerings and enabling sellers with use-case qualification, discovery guides, value calculators, demos, pricing models, and customer proof points.
  • Knowledge of data products, lakehouse, data mesh, metadata, lineage, data quality, semantic layers, vector search, knowledge bases, model evaluation, guardrails, and AI observability.
  • Experience creating reusable data platform blueprints, governance frameworks, RAG patterns, agent templates, evaluation toolkits, or MLOps runbooks.
  • Experience building a newly formed practice, AI center of excellence, data product organization, service line, or incubation business, including talent development and AWS certification growth.
  • Familiarity with AWS partner programs, ACE, AWS Marketplace, funding mechanisms, competencies, joint technical validation, and packaged or outcome-based commercial models.
  • Published thought leadership, strong customer references, and relevant certifications such as AWS Certified Machine Learning Engineer - Associate, AWS Certified Data Engineer - Associate, AWS Certified Solutions Architect - Professional, or AWS Certified AI Practitioner.
Success Measures
  • Launch at least 4-6 repeatable Data and AI offerings, reference architectures, demos, or accelerators within the first 12 months.
  • Support $50M-$100M in annual Data and AI services bookings, managed services revenue, or delivery portfolio.
  • Create or influence at least $100M-$200M in annual qualified pipeline while supporting a qualified-pursuit win rate of at least 30%-35%.
  • Launch at least 3 repeatable Data and AI sales plays and progress at least 20 AWS co-sell, ACE, Marketplace, or partner-referred opportunities annually.
  • Deliver at least 8 executive workshops, AI innovation days, customer roundtables, or industry briefings annually that generate qualified follow-on opportunities.
  • Publish or present at least 4 significant thought-leadership assets annually and secure at least 2 new customer references or case studies.
  • Move at least 5 production Data and AI solutions from proof of value to sustained adoption annually, with defined quality, cost, security, responsible AI, and business-value measures.
  • Maintain 4.5/5 or higher customer satisfaction and critical delivery escalations below 5% of active engagements.
  • Improve solution reuse, time to value, data quality, model evaluation discipline, deployment reliability, and transition quality from sales to delivery.
  • Grow AWS-certified Data and AI talent by at least 25% year over year or create at least 25 new relevant certifications annually.
  • Serve as recognized technical and market leader in at least 5 priority accounts or strategic deals annually.
Ideal Candidate Profile

The ideal Tech Practice Leader - Data and AI is a proven practice builder who combines deep data and AI credibility with commercial awareness, product thinking, responsible AI leadership, and delivery discipline. They can move fluidly between executive advisory, data strategy, AI architecture, use-case prioritization, platform engineering, model governance, presales solutioning, talent development, and delivery assurance. They bring the judgment to turn fast-moving AI innovation into secure, repeatable, scalable, and measurable business outcomes for mid-market customers.

Compensation at Accenture varies depending on a wide array of factors, which may include but are not limited to the specific office location, role, skill set, and level of experience. As required by local law, Accenture provides a reasonable range of compensation for roles that may be hired as set forth below.We anticipate this job posting will be posted until 10/17/2026.Accenture offers a market competitive suite of benefits including medical, dental, vision, life, and long-term disability coverage, a 401(k) plan, bonus opportunities, paid holidays, and paid time off. See more information on our benefits here:

U.S. Employee Benefits | Accenture

Role Location Annual Salary RangeCalifornia $163,000 to $369,800Cleveland $150,900 to $295,800Colorado $163,000 to $319,500District of Columbia $173,500 to $340,200Illinois $150,900 to $319,500Maine $138,800 to $272,100Maryland $163,000 to $319,500Massachusetts $163,000 to $340,200Minnesota $163,000 to $319,500New York $150,900 to $369,800New Jersey $173,500 to $369,800Virginia $150,900 to $340,200Washington $173,500 to $340,200

About Accenture

Accenture is a leading global professional services company that helps the world's leading businesses, governments and other organizations build their digital core, optimize their operations, accelerate revenue growth and enhance citizen services-creating tangible value at speed and scale. We are a talent- and innovation-led company with approximately 791,000 people serving clients in more than 120 countries. Technology is at the core of change today, and we are one of the world's leaders in helping drive that change, with strong ecosystem relationships. We combine our strength in technology and leadership in cloud, data and AI with unmatched industry experience, functional expertise and global delivery capability. Our broad range of services, solutions and assets across Strategy & Consulting, Technology, Operations, Industry X and Song, together with our culture of shared success and commitment to creating 360 value, enable us to help our clients reinvent and build trusted, lasting relationships. We measure our success by the 360 value we create for our clients, each other, our shareholders, partners and communities.

Visit us atwww.accenture.com

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Inclusion and diversity are fundamental to our culture and core values. Our rich diversity makes us more innovative and more creative, which helps us better serve our clients and our communities.Read more here

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