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Annotation Labelling Jobs in New Jersey (NOW HIRING)

Annotation Labelling information

What is annotation labelling?

Annotation labelling is the process of tagging or marking data—such as images, text, or audio—with relevant information or labels. This is an essential step in preparing datasets for machine learning and artificial intelligence models, as it helps algorithms understand and learn from raw data. Annotation labelling can include tasks like identifying objects in photos, transcribing speech, or categorizing text. Skilled annotators ensure accuracy and consistency to improve model performance. People in this role often use specialized tools or software to streamline and standardize the annotation process.

What are the key skills and qualifications needed to thrive as an Annotation Labelling Specialist, and why are they important?

To thrive as an Annotation Labelling Specialist, you need strong attention to detail, data analysis capabilities, and familiarity with data annotation standards, usually supported by a background in computer science or related fields. Proficiency with annotation tools such as Labelbox, CVAT, or Supervisely, and sometimes knowledge of basic programming or scripting, is typically required. Excellent communication, consistency, and the ability to follow complex instructions are crucial soft skills for producing high-quality labeled data. These skills ensure the accuracy and reliability of datasets, which are foundational for successful machine learning and AI model development.

What are some common challenges faced by Annotation Labelling professionals, and how can they be managed?

Annotation Labelling professionals often encounter challenges such as maintaining high accuracy while handling repetitive data, meeting tight deadlines, and adapting to evolving project guidelines. To manage these, it’s important to develop strong attention to detail, regularly communicate with team leads to clarify instructions, and leverage annotation tools efficiently. Collaborating closely with quality assurance teams can also help identify and correct errors early, ensuring consistently high-quality outputs.

What is the difference between Annotation Labelling vs Data Labeling Specialist?

AspectAnnotation LabellingData Labeling Specialist
CredentialsBasic technical skills, attention to detailSimilar skills, sometimes additional domain knowledge
Work EnvironmentData annotation platforms, remote or officeData annotation tasks, often remote or in-office
Industry UsageAI, machine learning, autonomous vehiclesAI, machine learning, healthcare, retail
Search & ComparisonCommonly compared for entry-level data tasksRelated but broader role

Annotation Labelling involves marking data such as images, text, or videos to train AI models. Data Labeling Specialists perform similar tasks but may have a broader scope, including verifying and managing labeled data. Both roles are essential in AI development, often overlapping in skills and work environment, but Annotation Labelling is more focused on the annotation process itself.

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Posted 9 days ago


Job description

Role: Tax SME for AI Training & Annotation
Experience: 5+ years in US Tax -( On-site )
Any location : Austin, TX, Richardson, TX, Houston, TX, Bellevue, WA, Bridgewater, NJ, Hartford, CT, Indianapolis, IN, Lisle, IL, Milwaukee, WI ,Raleigh, NC, Tempe, AZ

Must Have:

  - Deep knowledge of US Federal & State Tax rules
  - Corporate / Business Tax (entity structures, deductions, filing requirements)
  - Individual / Personal Tax (1040, credits, deductions, capital gains)
  - Ability to review & validate AI-generated tax responses for accuracy
  - Annotate, label & correct tax scenarios, rules & edge cases
  - Identify errors, ambiguities & hallucinations in AI outputs
  - Strong written communication — clear, precise explanations
Nice to Have:
  - CPA / EA certification
  - Prior AI annotation/data labeling experience
  - Familiarity with tax software (TurboTax, Drake, ProSeries)
  - Experience writing tax guidelines or training materials