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Freelance Machine Learning Data Annotation Jobs in Live Oak, TX

Junior Data Engineer

San Antonio, TX · On-site

$103K - $124K/yr

The ideal candidate will have some experience in building and maintaining data pipelines, exposure to AI-ready datasets, machine learning, and a focus on cloud-based data warehouses such as Snowflake ...

Junior Data Engineer

San Antonio, TX · On-site

$103K - $124K/yr

... machine learning. • Implementing modern ingestion and ELT pipelines using tools such as Openflow, Snowpipe‑style services, and third‑party ingestion frameworks. • Collaborates with data ...

Junior Data Engineer

San Antonio, TX

$103K - $124K/yr

The ideal candidate will have some experience in building and maintaining data pipelines, exposure to AI-ready datasets, machine learning, and a focus on cloud-based data warehouses such as Snowflake ...

Junior Data Engineer

San Antonio, TX · On-site

$103K - $124K/yr

The ideal candidate will have some experience in building and maintaining data pipelines, exposure to AI-ready datasets, machine learning, and a focus on cloud-based data warehouses such as Snowflake ...

About Us We are AI researchers and builders who understand how to curate data and RL environments ... deep learning proficiency (PyTorch preferred; familiar with training loops, optimizers, mixed ...

About Us We are AI researchers and builders who understand how to curate data and RL environments ... deep learning proficiency (PyTorch preferred; familiar with training loops, optimizers, mixed ...

Responsibilities include data preprocessing, model training, building APIs, and building data ... Leads the full life cycle of machine learning engineering to include analysis, solution design ...

New

Responsibilities include data preprocessing, model training, building APIs, and building data ... Leads the full life cycle of machine learning engineering to include analysis, solution design ...

New

Data Scientist 3

San Antonio, TX · On-site

$138.10 - $153.50/hr

Relevant experience must be in designing/implementing machine learning, data science, advanced analytical algorithms, programming (skill in at least one high‑level language, e.g. Python ...

Develop and implement machine learning and data processing solutions using Python and related libraries such as pandas, numpy, and scikit-learn. Build and optimize relational and NoSQL databases ...

Showing results 21-40

Freelance Machine Learning Data Annotation information

See Live Oak, TX salary details

$11

$18

$30

How much do freelance machine learning data annotation jobs pay per hour?

As of Aug 10, 2026, the average hourly pay for freelance machine learning data annotation in Live Oak, TX is $18.88, according to ZipRecruiter salary data. Most workers in this role earn between $14.95 and $21.59 per hour, depending on experience, location, and employer.

What is the difference between Freelance Machine Learning Data Annotation vs Data Labeler?

AspectFreelance Machine Learning Data AnnotationData Labeler
CredentialsBasic understanding of annotation tools, sometimes with specialized domain knowledgeTypically no formal credentials required
Work EnvironmentRemote, flexible, project-basedOften remote or in-house, depending on employer
Industry UsageUsed in AI/ML development for training datasetsUsed in data preparation for various industries, including AI
Search/Comparison IntentFocuses on freelance opportunities, project scope, and toolsMore general, often employed by companies for data labeling tasks

Freelance Machine Learning Data Annotation involves independently completing annotation tasks for AI models, often with specialized tools and domain knowledge. Data Labelers typically perform similar tasks but may work as employees or contractors within a company. The main difference lies in the freelance nature and project-based work of data annotation roles.

What are the key skills and qualifications needed to thrive as a freelance machine learning data annotation specialist?

To thrive as a Freelance Machine Learning Data Annotation specialist, you need attention to detail, basic knowledge of data labeling concepts, and familiarity with machine learning data types. Experience with annotation tools (such as Labelbox, RectLabel, or CVAT) and understanding of data privacy protocols are commonly required. Strong communication, time management, and the ability to follow complex guidelines are essential soft skills for delivering accurate results. These skills ensure high-quality, consistent data annotation, which is critical for effective machine learning model training and performance.

What is freelance machine learning data annotation?

Freelance machine learning data annotation involves labeling or tagging data—such as images, text, audio, or video—to help train machine learning models. As a freelancer, you work independently or through platforms, completing specific annotation tasks assigned by companies or researchers. This work is essential because high-quality labeled data is required for AI systems to learn and make accurate predictions. Annotators may categorize images, transcribe speech, or highlight relevant information in documents. The flexibility of freelancing allows you to choose projects and work remotely.

What are some common challenges faced by freelance machine learning data annotators, and how can they be managed?

Freelance machine learning data annotators often encounter challenges such as maintaining data accuracy, handling repetitive tasks, and understanding complex annotation guidelines. Staying organized and regularly reviewing project instructions can help ensure consistency and quality in annotations. Additionally, communicating proactively with project managers and utilizing annotation tools efficiently can help manage workload and clarify uncertainties. Building expertise in different data types (text, image, audio) also allows annotators to diversify their projects and reduce monotony.
What cities near Live Oak, TX are hiring for Freelance Machine Learning Data Annotation jobs? Cities near Live Oak, TX with the most Freelance Machine Learning Data Annotation job openings:

Junior Data Engineer

SWBC

San Antonio, TX • On-site

$103K - $124K/yr

Full-time

Medical, Retirement

Re-posted 7 days ago


SWBC rating

6.5

Company rating: 6.5 out of 10

Based on 17 frontline employees who took The Breakroom Quiz


Job description

SWBC is seeking a talented individual to join our dynamic Data team. The ideal candidate will have some experience in building and maintaining data pipelines, exposure to AI-ready datasets, machine learning, and a focus on cloud-based data warehouses such as Snowflake or Redshift. This role offers an exciting opportunity to work with cutting-edge technologies and drive impactful data-driven solutions.

Why you'll love this role:

As a Junior Data Engineer, you'll gain hands-on experience building and maintaining data solutions that support real business needs. In this role, you will learn how to build and maintain data pipelines with guidance from experienced team members, work closely with cross-functional teams to support data-driven projects, assist in improving data quality, performance, and reliability and gain exposure to modern data tools, technologies, and automation practices. We provide a supportive, team-oriented environment where you'll receive mentorship and opportunities to grow your technical and professional skills. Our team values collaboration, curiosity, and continuous learning, and we celebrate both progress and success along the way. If you're motivated, detail-oriented, and excited to launch your career in data engineering, we'd love you to join our team.

Essential duties include the following:

  • Designs, develops, and maintains scalable, secure, and costefficient data pipelines to ingest, transform, and serve structured and unstructured data for analytics, ML, and AI workloads.
  • Builds and manages cloudnative data architectures (data warehouse, lakehouse, and streaming) that support BI, advanced analytics, and machine learning.
  • Implementing modern ingestion and ELT pipelines using tools such as Openflow, Snowpipestyle services, and thirdparty ingestion frameworks.
  • Collaborates with data scientists, ML engineers, and business stakeholders to understand feature, training, and inference data requirements.
  • Develops and maintains highquality, AIready datasets, including feature tables, historical snapshots, and timeaware datasets for model training.
  • Implementing and enforces data quality, data validation, and data observability controls critical for downstream analytics and AI reliability.
  • Designs and evolves enterprisescale data models, including canonical, analytical, and featureoriented schemas.
  • Optimizing pipelines for performance, reliability, scalability, and cost across batch and nearrealtime workloads.
  • Enables access to curated data for GenAI use cases, including text datasets, embeddings, and metadata supporting search and retrieval patterns.
  • Applies data governance, security, and privacy best practices to ensure trusted and compliant data usage for analytics and AI.
  • Stays current with emerging technologies and best practices in data engineering, cloud platforms, and AIrelated data infrastructure.

Serious candidates will possess the minimum qualifications:

  • Bachelor's degree or higher in Computer Science, Engineering, Data Science, or related field. Minimal one to three years' experience.
  • Minimum one (1) year proven experience with knowledge of modern data warehousing best practices.
  • Advanced proficiency in SQL and experience with databases such as PostgreSQL, MySQL, Snowflake, Redshift, or similar platforms.
  • Handson experience building cloudbased data pipelines.
  • Experience with orchestration tools such as Airflow, AWS Step Functions, or similar.
  • Strong understanding of data modeling, ELT/ETL patterns, and data quality frameworks.
  • Excellent problemsolving, communication, and collaboration skills.
  • Proficiency in Python, Java, or Scala, particularly for data transformation and pipeline development.
  • Experience enabling machine learning data pipelines, including feature engineering and training data preparation.
  • Familiarity with feature stores, vector databases, or AIrelated data architectures.
  • Experience with modern ingestion and transformation tools, including Openflow, DBT, AWS Glue, SSIS, Fivetran, and Lambdabased pipelines.
  • Exposure to MLOps concepts, such as data versioning, lineage, and reproducible pipelines.
  • Cloud certifications (AWS, Azure, or GCP) preferred.
  • Experience working in Agile/Scrum development environments.

SWBC offers*:

  • Competitive overall compensation package
  • Work/Life balance
  • Employee engagement activities and recognition awards
  • Years of Service awards
  • Career enhancement and growth opportunities
  • Leadership Academy and Mentor Program
  • Continuing education and career certifications
  • Variety of healthcare coverage options
  • Traditional and Roth 401(k) retirement plans
  • Lucrative Wellness Program

*Based upon employee eligibility

Additional Information:

SWBC is a Substance-Free Workplace and requires pre-employment drug testing.

Please note, SWBC does not hire tobacco users as allowed by law.

To learn more about SWBC, visit our website at www.SWBC.com. If interested, please click the appropriate apply button.


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